page	source_page_order	layout_page_order	layout_order	ref	label	role_guess	included_in_body	excluded_risk_level	body_decision_reason	parser_body_decision_reason	production_usage	visual_asset_type	visual_asset_label	visual_asset_caption_preview	truncation_marker	inside_body_region	body_region_id	zone	column	column_index	column_count	region_id	background_rgb	background_class	is_gray_background	has_frame_evidence	bbox	text_preview	cleaned_text_preview	text	cleaned_text
1	1	1	0	#/texts/0	page_header	page_header	False	low	first_page_metadata	first_page_metadata						True	p1:body_region:0	top_margin	column_1_of_2	1	2	p1:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.19, 141.55, 18.69]	J Nanopart Res (2018) 20: 160 https://doi.org/10.1007/s11051-018-4235-1	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160 https://doi.org/10.1007/s11051-018-4235-1	J Nanopart Res (2018) 20: 160
1	2	2	1	#/texts/1	section_header	title_candidate	False	low	first_page_front_matter_heading	first_page_front_matter_heading						True	p1:body_region:0	front_matter	column_1_of_2	1	2	p1:front_matter:front_panel:gray	[195, 196, 196]	gray	True	False	[52.44, 65.76, 39.87, 9.08]	REVIEW	REVIEW	REVIEW	REVIEW
1	3	3	2	#/texts/2	section_header	title_candidate	False	low	first_page_front_matter_heading	first_page_front_matter_heading						True	p1:body_region:0	front_matter	column_1_of_2	1	2	p1:front_matter:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 107.14, 380.39, 30.94]	Recent advances on Fe- and Mn-based cathode materials for lithium and sodium ion batteries	Recent advances on Fe- and Mn-based cathode materials for lithium and sodium ion batteries	Recent advances on Fe- and Mn-based cathode materials for lithium and sodium ion batteries	Recent advances on Fe- and Mn-based cathode materials for lithium and sodium ion batteries
1	4	4	3	#/texts/3	text	front_matter_candidate	False	low	before_body_started	before_body_started						True	p1:body_region:0	front_matter	column_1_of_2	1	2	p1:front_matter:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 157.49, 192.35, 33.85]	Xiaobo Zhu & Tongen Lin & Eric Manning & Yuancheng Zhang & Mengmeng Yu & Bin Zuo & Lianzhou Wang	Xiaobo Zhu & Tongen Lin & Eric Manning & Yuancheng Zhang & Mengmeng Yu & Bin Zuo & Lianzhou Wang	Xiaobo Zhu & Tongen Lin & Eric Manning & Yuancheng Zhang & Mengmeng Yu & Bin Zuo & Lianzhou Wang	Xiaobo Zhu & Tongen Lin & Eric Manning & Yuancheng Zhang & Mengmeng Yu & Bin Zuo & Lianzhou Wang
1	5	5	4	#/texts/4	text	metadata	False	low	first_page_metadata	first_page_metadata						True	p1:body_region:0	front_matter	column_1_of_2	1	2	p1:front_matter:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 225.19, 285.74, 17.6]	Received: 18 January 2018 /Accepted: 23 April 2018 /Published online: 11 June 2018 # Springer Science+Business Media B.V ., part of Springer Nature 2018	Received: 18 January 2018 /Accepted: 23 April 2018 /Published online: 11 June 2018 # Springer Science+Business Media B.V ., part of Springer Nature 2018	Received: 18 January 2018 /Accepted: 23 April 2018 /Published online: 11 June 2018 # Springer Science+Business Media B.V ., part of Springer Nature 2018	Received: 18 January 2018 /Accepted: 23 April 2018 /Published online: 11 June 2018 # Springer Science+Business Media B.V ., part of Springer Nature 2018
1	6	6	5	#/texts/5	text	abstract_candidate	False	medium	implicit_abstract	implicit_abstract						True	p1:body_region:0	front_matter	column_1_of_2	1	2	p1:front_matter:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 262.24, 215.51, 195.45]	Abstract The ever-growing market of electrochemical energy storage impels the advances on cost-effective and environmentally friendly battery chemistries. Lithiumion batteries (LIBs) are currently the most critical ener…	Abstract The ever-growing market of electrochemical energy storage impels the advances on cost-effective and environmentally friendly battery chemistries. Lithiumion batteries (LIBs) are currently the most critical ener…	Abstract The ever-growing market of electrochemical energy storage impels the advances on cost-effective and environmentally friendly battery chemistries. Lithiumion batteries (LIBs) are currently the most critical energy storage devices for a variety of applications, while sodium-ion batteries (SIBs) are expected to complement LIBs in large-scale applications. In respect to their constituent components, the cathode part is the most significant sector regarding weight fraction and cost. Therefore, the development of cathode materials based on Earth ' s abundant elements (Fe and Mn) largely determines the prospects of the batteries. Herein, we offer a comprehensive review of the up-to-date advances on Fe- and Mnbased cathode materials for LIBs and SIBs, highlighting some promising candidates, such as Li- and Mn-rich layered oxides, LiNi0.5Mn1.5O4, LiFe1-xMnxPO4,	Abstract The ever-growing market of electrochemical energy storage impels the advances on cost-effective and environmentally friendly battery chemistries. Lithiumion batteries (LIBs) are currently the most critical energy storage devices for a variety of applications, while sodium-ion batteries (SIBs) are expected to complement LIBs in large-scale applications. In respect to their constituent components, the cathode part is the most significant sector regarding weight fraction and cost. Therefore, the development of cathode materials based on Earth ' s abundant elements (Fe and Mn) largely determines the prospects of the batteries. Herein, we offer a comprehensive review of the up-to-date advances on Fe- and Mnbased cathode materials for LIBs and SIBs, highlighting some promising candidates, such as Li- and Mn-rich layered oxides, LiNi0.5Mn1.5O4, LiFe1-xMnxPO4,
1	16	7	6	#/texts/14	text	front_matter_heading	False	low	abstract_boundary_front_matter	abstract_boundary_front_matter						False	None	front_matter	column_2_of_2	2	2	p1:front_matter:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 346.38, 215.5, 33.53]	Keywords Cathodematerials . Iron-based . Manganesebased . Lithium ion batteries . Sodium ion batteries . Energy storage	Keywords Cathodematerials . Iron-based . Manganesebased . Lithium ion batteries . Sodium ion batteries . Energy storage	Keywords Cathodematerials . Iron-based . Manganesebased . Lithium ion batteries . Sodium ion batteries . Energy storage	Keywords Cathodematerials . Iron-based . Manganesebased . Lithium ion batteries . Sodium ion batteries . Energy storage
1	15	8	7	#/texts/13#prov1	text	abstract_candidate	False	medium	implicit_abstract	implicit_abstract						False	None	front_matter	column_2_of_2	2	2	p1:front_matter:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 262.24, 215.53, 58.48]	NaxFeyMn1-yO2, Na4MnFe2(PO4)(P2O7), and Prussian blue analogs. Also, challenges and prospects are discussed to direct the possible development of costeffective and high-performance cathode materials for future rechargea…	NaxFeyMn1-yO2, Na4MnFe2(PO4)(P2O7), and Prussian blue analogs. Also, challenges and prospects are discussed to direct the possible development of costeffective and high-performance cathode materials for future rechargea…	NaxFeyMn1-yO2, Na4MnFe2(PO4)(P2O7), and Prussian blue analogs. Also, challenges and prospects are discussed to direct the possible development of costeffective and high-performance cathode materials for future rechargeable batteries.	NaxFeyMn1-yO2, Na4MnFe2(PO4)(P2O7), and Prussian blue analogs. Also, challenges and prospects are discussed to direct the possible development of costeffective and high-performance cathode materials for future rechargeable batteries.
1	17	9	8	#/texts/15	section_header	body_heading	False	low	body_heading	body_heading						False	None	body_zone	column_2_of_2	2	2	p1:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 418.09, 52.55, 8.75]	Introduction	Introduction	Introduction	Introduction
1	10	10	9	#/texts/9	text	metadata	False	medium	first_page_metadata	first_page_metadata						True	p1:body_region:0	body_zone	column_1_of_2	1	2	p1:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.76, 529.39, 214.35, 52.83]	X. Zhu : T. Lin : E. Manning : L. Wang ( * ) Nanomaterials Centre, School of Chemical Engineering and Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, QLD, Brisbane 4072, Austral…	X. Zhu : T. Lin : E. Manning : L. Wang ( * ) Nanomaterials Centre, School of Chemical Engineering and Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, QLD, Brisbane 4072, Austral…	X. Zhu : T. Lin : E. Manning : L. Wang ( * ) Nanomaterials Centre, School of Chemical Engineering and Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, QLD, Brisbane 4072, Australia e-mail: l.wang@uq.edu.au	X. Zhu : T. Lin : E. Manning : L. Wang ( * ) Nanomaterials Centre, School of Chemical Engineering and Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, QLD, Brisbane 4072, Australia e-mail: l.wang@uq.edu.au
1	11	11	10	#/texts/10	text	affiliation	False	low	affiliation_block	affiliation_block						True	p1:body_region:0	body_zone	column_1_of_2	1	2	p1:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.76, 594.77, 204.74, 17.33]	E. Manning Faculty of Engineering, University of Alberta, Edmonton, AB	E. Manning Faculty of Engineering, University of Alberta, Edmonton, AB	E. Manning Faculty of Engineering, University of Alberta, Edmonton, AB	E. Manning Faculty of Engineering, University of Alberta, Edmonton, AB
1	8	15	14	#/texts/7	text	unknown_text	False	medium	outside_body_flow	outside_body_flow						True	p1:body_region:0	body_zone	column_1_of_2	1	2	p1:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 495.95, 135.17, 7.35]	20th Anniversary Issue: From the editors	20th Anniversary Issue: From the editors	20th Anniversary Issue: From the editors	20th Anniversary Issue: From the editors
1	13	17	16	#/texts/12	text	unknown_text	False	medium	empty_after_cleaning	empty_after_cleaning						True	p1:body_region:0	body_zone	column_1_of_2	1	2	p1:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[80.84, 629.05, 32.89, 11.68]	: :		: :	
2	1	1	18	#/texts/17	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p2:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 63.0, 7.44]	160 Page 2 of 40	160 Page 2 of 40	160 Page 2 of 40	160 Page 2 of 40
2	2	5	22	#/texts/18	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p2:body_region:0	top_margin	column_2_of_2	2	2	p2:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
2	8	8	25	#/texts/23	section_header	body_heading	False	low	body_heading	body_heading						True	p2:body_region:0	page_body	column_2_of_2	2	2	p2:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 442.97, 174.19, 8.75]	Fe- and Mn-based oxides as LIB cathodes	Fe- and Mn-based oxides as LIB cathodes	Fe- and Mn-based oxides as LIB cathodes	Fe- and Mn-based oxides as LIB cathodes
3	1	1	27	#/texts/25	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p3:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
3	3	2	28	#/texts/27	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_1_of_2	1	2	p3:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 384.38, 215.5, 37.31]	Fig. 1 a Constitutional costs for manufacturing a typical LIB and SIB. Values are from ref. (Kim et al. 2014). b Abundances of metal elementals involved in standard cathode materials. Values are taken from ref. (Nitta e…	Fig. 1 a Constitutional costs for manufacturing a typical LIB and SIB. Values are from ref. (Kim et al. 2014). b Abundances of metal elementals involved in standard cathode materials. Values are taken from ref. (Nitta e…	Fig. 1 a Constitutional costs for manufacturing a typical LIB and SIB. Values are from ref. (Kim et al. 2014). b Abundances of metal elementals involved in standard cathode materials. Values are taken from ref. (Nitta et al. 2015). c Sustainable (naturally	Fig. 1 a Constitutional costs for manufacturing a typical LIB and SIB. Values are from ref. (Kim et al. 2014). b Abundances of metal elementals involved in standard cathode materials. Values are taken from ref. (Nitta et al. 2015). c Sustainable (naturally
3	4	3	29	#/texts/28	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_1_of_2	1	2	p3:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 442.98, 32.99, 9.61]	LiMnO2	LiMnO2	LiMnO2	LiMnO2
3	2	5	31	#/texts/26	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p3:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[437.38, 34.25, 62.91, 7.44]	Page 3 of 40 160	Page 3 of 40 160	Page 3 of 40 160	Page 3 of 40 160
4	2	1	35	#/texts/33	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p4:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
4	3	2	36	#/texts/34	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p4:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 42.14, 7.35]	Page 4 of 40	Page 4 of 40	Page 4 of 40	Page 4 of 40
4	5	3	37	#/texts/36	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_1_of_2	1	2	p4:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 182.33, 215.42, 27.25]	Fig. 2 a Crystal structure of layered LiMO2. Reproduced from ref. (Chen et al. 2016) with permission. b Cycling profile of layered LiMnO2. Reproduced from ref. (Armstrong and Bruce	Fig. 2 a Crystal structure of layered LiMO2. Reproduced from ref. (Chen et al. 2016) with permission. b Cycling profile of layered LiMnO2. Reproduced from ref. (Armstrong and Bruce	Fig. 2 a Crystal structure of layered LiMO2. Reproduced from ref. (Chen et al. 2016) with permission. b Cycling profile of layered LiMnO2. Reproduced from ref. (Armstrong and Bruce	Fig. 2 a Crystal structure of layered LiMO2. Reproduced from ref. (Chen et al. 2016) with permission. b Cycling profile of layered LiMnO2. Reproduced from ref. (Armstrong and Bruce
4	7	6	40	#/texts/38	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_1_of_2	1	2	p4:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 530.12, 29.02, 9.66]	LiFeO2	LiFeO2	LiFeO2	LiFeO2
4	4	8	42	#/texts/35	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p4:body_region:0	top_margin	column_2_of_2	2	2	p4:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
4	10	9	43	#/texts/40	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						True	p4:body_region:0	page_body	column_2_of_2	2	2	p4:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 182.33, 215.53, 27.25]	1996) with permission. c Structural illustration and voltage profiles of orthorhombic LiMnO2. Reproduced from ref. (Croguennec et al. 1997b) and ref. (He et al. 2010) with permissions	1996) with permission. c Structural illustration and voltage profiles of orthorhombic LiMnO2. Reproduced from ref. (Croguennec et al. 1997b) and ref. (He et al. 2010) with permissions	1996) with permission. c Structural illustration and voltage profiles of orthorhombic LiMnO2. Reproduced from ref. (Croguennec et al. 1997b) and ref. (He et al. 2010) with permissions	1996) with permission. c Structural illustration and voltage profiles of orthorhombic LiMnO2. Reproduced from ref. (Croguennec et al. 1997b) and ref. (He et al. 2010) with permissions
5	1	1	47	#/texts/43	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p5:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
5	2	2	48	#/texts/44	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p5:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[437.38, 34.25, 62.91, 7.44]	Page 5 of 40 160	Page 5 of 40 160	Page 5 of 40 160	Page 5 of 40 160
5	3	3	49	#/texts/45	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_1_of_2	1	2	p5:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 277.12, 453.51, 17.33]	Fig. 3 a , b Charge/discharge curves of LiFeO2 ( a ) and oxygen-deficient LiFeO2-x ( b ). c XRD pattern of cycled O3-type LiFeO2. Reproduced from ref. (Hirayama et al. 2011) with permission	Fig. 3 a , b Charge/discharge curves of LiFeO2 ( a ) and oxygen-deficient LiFeO2-x ( b ). c XRD pattern of cycled O3-type LiFeO2. Reproduced from ref. (Hirayama et al. 2011) with permission	Fig. 3 a , b Charge/discharge curves of LiFeO2 ( a ) and oxygen-deficient LiFeO2-x ( b ). c XRD pattern of cycled O3-type LiFeO2. Reproduced from ref. (Hirayama et al. 2011) with permission	Fig. 3 a , b Charge/discharge curves of LiFeO2 ( a ) and oxygen-deficient LiFeO2-x ( b ). c XRD pattern of cycled O3-type LiFeO2. Reproduced from ref. (Hirayama et al. 2011) with permission
5	5	5	51	#/texts/47	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_1_of_2	1	2	p5:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 492.76, 89.77, 8.65]	Li2MnO3-based oxides	Li2MnO3-based oxides	Li2MnO3-based oxides	Li2MnO3-based oxides
6	1	1	55	#/texts/50	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	left	None	None	p6:top_margin:left:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
6	2	2	56	#/texts/51	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	left	None	None	p6:top_margin:left:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 42.14, 7.35]	Page 6 of 40	Page 6 of 40	Page 6 of 40	Page 6 of 40
6	3	3	57	#/texts/52	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	right	None	None	p6:top_margin:right:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
7	1	1	58	#/texts/53	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p7:body_region:0	top_margin	column_1_of_2	1	2	p7:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
7	6	5	62	#/texts/58	section_header	body_heading	False	low	body_heading	body_heading						True	p7:body_region:0	page_body	column_1_of_2	1	2	p7:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 530.11, 36.61, 9.67]	LiMn2O4	LiMn2O4	LiMn2O4	LiMn2O4
7	2	7	64	#/texts/54	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p7:body_region:1	top_margin	column_2_of_2	2	2	p7:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[437.38, 34.25, 62.91, 7.44]	Page 7 of 40 160	Page 7 of 40 160	Page 7 of 40 160	Page 7 of 40 160
8	2	1	67	#/texts/61	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p8:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
8	3	2	68	#/texts/62	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p8:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 42.14, 7.35]	Page 8 of 40	Page 8 of 40	Page 8 of 40	Page 8 of 40
8	4	3	69	#/texts/63	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p8:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
8	5	4	70	#/texts/64	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_1_of_2	1	2	p8:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.76, 351.44, 453.57, 18.81]	Fig. 5 a Crystal structure of spinel LiMn2O4. Reproduced from ref. (Chen et al. 2016) with permission. b -e Schematic diagram of the composites and the corresponding electrochemical performance. Reproduced from ref. (Le…	Fig. 5 a Crystal structure of spinel LiMn2O4. Reproduced from ref. (Chen et al. 2016) with permission. b -e Schematic diagram of the composites and the corresponding electrochemical performance. Reproduced from ref. (Le…	Fig. 5 a Crystal structure of spinel LiMn2O4. Reproduced from ref. (Chen et al. 2016) with permission. b -e Schematic diagram of the composites and the corresponding electrochemical performance. Reproduced from ref. (Lee et al. 2017) with permission	Fig. 5 a Crystal structure of spinel LiMn2O4. Reproduced from ref. (Chen et al. 2016) with permission. b -e Schematic diagram of the composites and the corresponding electrochemical performance. Reproduced from ref. (Lee et al. 2017) with permission
8	6	6	72	#/texts/65	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_1_of_2	1	2	p8:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.76, 442.98, 60.78, 9.61]	LiNi0.5Mn1.5O4	LiNi0.5Mn1.5O4	LiNi0.5Mn1.5O4	LiNi0.5Mn1.5O4
9	2	1	76	#/texts/69	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p9:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
9	3	4	79	#/texts/70	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p9:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[437.38, 34.25, 62.91, 7.44]	Page 9 of 40 160	Page 9 of 40 160	Page 9 of 40 160	Page 9 of 40 160
9	6	6	81	#/texts/72	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_2_of_2	2	2	p9:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 380.67, 200.92, 21.22]	Fe- and Mn-based polyanion compounds as LIB cathodes	Fe- and Mn-based polyanion compounds as LIB cathodes	Fe- and Mn-based polyanion compounds as LIB cathodes	Fe- and Mn-based polyanion compounds as LIB cathodes
9	8	8	83	#/texts/74	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_2_of_2	2	2	p9:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 592.42, 116.98, 8.65]	Fe- and Mn-based phosphates	Fe- and Mn-based phosphates	Fe- and Mn-based phosphates	Fe- and Mn-based phosphates
10	3	1	85	#/texts/76	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p10:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
10	4	2	86	#/texts/77	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p10:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 10 of 40	Page 10 of 40	Page 10 of 40	Page 10 of 40
10	6	3	87	#/texts/79	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_1_of_2	1	2	p10:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 380.87, 215.56, 37.31]	Fig. 6 a Comparison of the two structural configurations in LNMO. Reproduced from ref. (Liu et al. 2012a) with permission. b Typical charge/discharge curves of LNMO with the two phases. Reproduced from ref. (Wang et al.…	Fig. 6 a Comparison of the two structural configurations in LNMO. Reproduced from ref. (Liu et al. 2012a) with permission. b Typical charge/discharge curves of LNMO with the two phases. Reproduced from ref. (Wang et al.…	Fig. 6 a Comparison of the two structural configurations in LNMO. Reproduced from ref. (Liu et al. 2012a) with permission. b Typical charge/discharge curves of LNMO with the two phases. Reproduced from ref. (Wang et al. 2011b) with permission. c , d	Fig. 6 a Comparison of the two structural configurations in LNMO. Reproduced from ref. (Liu et al. 2012a) with permission. b Typical charge/discharge curves of LNMO with the two phases. Reproduced from ref. (Wang et al. 2011b) with permission. c , d
10	5	5	89	#/texts/78	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p10:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
10	7	6	90	#/texts/80	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_2_of_2	2	2	p10:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 380.87, 215.49, 37.23]	Structural characteristics and electrochemical properties on the basis of our prepared samples. e , f Outstanding capacity retention achieved by using lithium phosphorus oxynitride solid electrolyte. Reproduced from ref…	Structural characteristics and electrochemical properties on the basis of our prepared samples. e , f Outstanding capacity retention achieved by using lithium phosphorus oxynitride solid electrolyte. Reproduced from ref…	Structural characteristics and electrochemical properties on the basis of our prepared samples. e , f Outstanding capacity retention achieved by using lithium phosphorus oxynitride solid electrolyte. Reproduced from ref. (Li et al. 2015b) with permission	Structural characteristics and electrochemical properties on the basis of our prepared samples. e , f Outstanding capacity retention achieved by using lithium phosphorus oxynitride solid electrolyte. Reproduced from ref. (Li et al. 2015b) with permission
11	1	1	92	#/texts/81	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	left	None	None	p11:top_margin:left:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
11	2	2	93	#/texts/82	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	right	None	None	p11:top_margin:right:white	[255, 255, 255]	white	False	True	[433.53, 34.25, 66.76, 7.44]	Page 11 of 40 160	Page 11 of 40 160	Page 11 of 40 160	Page 11 of 40 160
11	3	3	94	#/texts/83	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	top_margin	left	None	None	p11:top_margin:left:white	[255, 255, 255]	white	False	False	[46.77, 54.43, 110.66, 316.15]	Fig. 7 a Crystal structure of spinel LiMn2O4. Reproduced from ref. (Chen et al. 2016) with permission. b High-rate discharge capability of LiFe 0.9P0.95O4δ . Reproduced from ref. (Kang and Ceder 2009) with permission. c…	Fig. 7 a Crystal structure of spinel LiMn2O4. Reproduced from ref. (Chen et al. 2016) with permission. b High-rate discharge capability of LiFe 0.9P0.95O4δ . Reproduced from ref. (Kang and Ceder 2009) with permission. c…	Fig. 7 a Crystal structure of spinel LiMn2O4. Reproduced from ref. (Chen et al. 2016) with permission. b High-rate discharge capability of LiFe 0.9P0.95O4δ . Reproduced from ref. (Kang and Ceder 2009) with permission. c Structural and electrochemical properties of a core-shell LFP nanocomposites. Reproduced from ref. (Naoi et al. 2016) with permission. d Morphology and discharge curves of LMO nanoparticles. Reproduced with permission (Hong et al. 2015). e Phase transformation diagram of LiMn0.6Fe0.4PO4 over the extraction/insertion of Li ions. Reproduced from ref. (Ravnsbæk et al. 2014) with permission. f Phase transformation strain as a function of the Mn content in LFMP, and a special case of LiMn0.2Fe0.8PO4 with no misfit strain. Reproduced from ref. (Ravnsbæk et al. 2016) with permission. g LiMn0.5Fe0.5PO4 nanocrystals with different Fe-Li antisite defects showing distinct rate performance. Reproduced from ref. (Hu et al. 2017) with permission	Fig. 7 a Crystal structure of spinel LiMn2O4. Reproduced from ref. (Chen et al. 2016) with permission. b High-rate discharge capability of LiFe 0.9P0.95O4δ . Reproduced from ref. (Kang and Ceder 2009) with permission. c Structural and electrochemical properties of a core-shell LFP nanocomposites. Reproduced from ref. (Naoi et al. 2016) with permission. d Morphology and discharge curves of LMO nanoparticles. Reproduced with permission (Hong et al. 2015). e Phase transformation diagram of LiMn0.6Fe0.4PO4 over the extraction/insertion of Li ions. Reproduced from ref. (Ravnsbæk et al. 2014) with permission. f Phase transformation strain as a function of the Mn content in LFMP, and a special case of LiMn0.2Fe0.8PO4 with no misfit strain. Reproduced from ref. (Ravnsbæk et al. 2016) with permission. g LiMn0.5Fe0.5PO4 nanocrystals with different Fe-Li antisite defects showing distinct rate performance. Reproduced from ref. (Hu et al. 2017) with permission
12	1	1	95	#/texts/84	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p12:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
12	2	2	96	#/texts/85	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p12:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 12 of 40	Page 12 of 40	Page 12 of 40	Page 12 of 40
12	3	6	100	#/texts/86	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p12:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
12	9	9	103	#/texts/91	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_2_of_2	2	2	p12:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 604.83, 104.52, 8.65]	Fe- and Mn-based silicates	Fe- and Mn-based silicates	Fe- and Mn-based silicates	Fe- and Mn-based silicates
13	2	1	105	#/texts/93	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p13:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
13	5	4	108	#/texts/96	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_1_of_2	1	2	p13:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 604.84, 101.63, 8.65]	Fe- and Mn-based borates	Fe- and Mn-based borates	Fe- and Mn-based borates	Fe- and Mn-based borates
13	3	6	110	#/texts/94	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p13:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 67.04, 7.44]	Page 13 of 40 160	Page 13 of 40 160	Page 13 of 40 160	Page 13 of 40 160
13	8	8	112	#/texts/99	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_2_of_2	2	2	p13:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.86, 442.98, 173.06, 8.75]	Fe- and Mn-based oxides as SIB cathodes	Fe- and Mn-based oxides as SIB cathodes	Fe- and Mn-based oxides as SIB cathodes	Fe- and Mn-based oxides as SIB cathodes
14	2	1	114	#/texts/101	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p14:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 67.14, 7.44]	160 Page 14 of 40	160 Page 14 of 40	160 Page 14 of 40	160 Page 14 of 40
14	4	2	115	#/texts/103	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_1_of_2	1	2	p14:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 309.11, 215.54, 37.58]	Fig. 8 a , b Crystal structures of P 21/ n Li2FeSiO4 ( a ), which transforms into Pmn 21 Li2FeSiO4 ( b ). c Typical charge/discharge curves of Li2FeSiO4. Reproduced from ref. (Armstrong et al. 2011) with permission. d S…	Fig. 8 a , b Crystal structures of P 21/ n Li2FeSiO4 ( a ), which transforms into Pmn 21 Li2FeSiO4 ( b ). c Typical charge/discharge curves of Li2FeSiO4. Reproduced from ref. (Armstrong et al. 2011) with permission. d S…	Fig. 8 a , b Crystal structures of P 21/ n Li2FeSiO4 ( a ), which transforms into Pmn 21 Li2FeSiO4 ( b ). c Typical charge/discharge curves of Li2FeSiO4. Reproduced from ref. (Armstrong et al. 2011) with permission. d Structural transformation routes of	Fig. 8 a , b Crystal structures of P 21/ n Li2FeSiO4 ( a ), which transforms into Pmn 21 Li2FeSiO4 ( b ). c Typical charge/discharge curves of Li2FeSiO4. Reproduced from ref. (Armstrong et al. 2011) with permission. d Structural transformation routes of
14	6	5	118	#/texts/105	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_1_of_2	1	2	p14:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.76, 592.42, 31.87, 9.61]	NaFeO2	NaFeO2	NaFeO2	NaFeO2
14	3	7	120	#/texts/102	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p14:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
14	8	8	121	#/texts/107	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_2_of_2	2	2	p14:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 309.38, 215.56, 37.23]	LiFeBO3 during delithiation and degradation. Reproduced from ref. (Bo et al. 2014) with permission. e Charge/discharge profiles of mesoporous LiFeBO3/C hollow spheres. Reproduced from ref. (Chen et al. 2015) with permis…	LiFeBO3 during delithiation and degradation. Reproduced from ref. (Bo et al. 2014) with permission. e Charge/discharge profiles of mesoporous LiFeBO3/C hollow spheres. Reproduced from ref. (Chen et al. 2015) with permis…	LiFeBO3 during delithiation and degradation. Reproduced from ref. (Bo et al. 2014) with permission. e Charge/discharge profiles of mesoporous LiFeBO3/C hollow spheres. Reproduced from ref. (Chen et al. 2015) with permission	LiFeBO3 during delithiation and degradation. Reproduced from ref. (Bo et al. 2014) with permission. e Charge/discharge profiles of mesoporous LiFeBO3/C hollow spheres. Reproduced from ref. (Chen et al. 2015) with permission
15	1	1	123	#/texts/109	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p15:body_region:0	top_margin	column_1_of_2	1	2	p15:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
15	3	2	124	#/texts/111	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						True	p15:body_region:0	top_margin	column_1_of_2	1	2	p15:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 54.43, 110.64, 96.98]	Fig. 9 a Structural comparison of P2-type and O3-type NaxMO2. Reproduced from ref. (Yabuuchi et al. 2012a) with permission. b Synthesis phase diagram of NaxCoO2 as a function of the Na/ Co ratio from precursors and heat…	Fig. 9 a Structural comparison of P2-type and O3-type NaxMO2. Reproduced from ref. (Yabuuchi et al. 2012a) with permission. b Synthesis phase diagram of NaxCoO2 as a function of the Na/ Co ratio from precursors and heat…	Fig. 9 a Structural comparison of P2-type and O3-type NaxMO2. Reproduced from ref. (Yabuuchi et al. 2012a) with permission. b Synthesis phase diagram of NaxCoO2 as a function of the Na/ Co ratio from precursors and heating temperature. Reproduced from ref. (Lei et al. 2014) with permission	Fig. 9 a Structural comparison of P2-type and O3-type NaxMO2. Reproduced from ref. (Yabuuchi et al. 2012a) with permission. b Synthesis phase diagram of NaxCoO2 as a function of the Na/ Co ratio from precursors and heating temperature. Reproduced from ref. (Lei et al. 2014) with permission
15	2	6	128	#/texts/110	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p15:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 67.04, 7.44]	Page 15 of 40 160	Page 15 of 40 160	Page 15 of 40 160	Page 15 of 40 160
16	2	1	131	#/texts/116	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	left	None	None	p16:top_margin:left:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
16	3	2	132	#/texts/117	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	left	None	None	p16:top_margin:left:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 16 of 40	Page 16 of 40	Page 16 of 40	Page 16 of 40
16	4	3	133	#/texts/118	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	right	None	None	p16:top_margin:right:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
16	5	4	134	#/texts/119	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	left	None	None	p16:page_body:left:white	[255, 255, 255]	white	False	False	[46.77, 202.0, 215.43, 27.39]	Fig. 10 a Initial charge/discharge curves of NaFeO2 on the dependence of different cut-off potentials. Reprinted from ref. (Okada et al. 2006) with permission. b Voltage profiles along	Fig. 10 a Initial charge/discharge curves of NaFeO2 on the dependence of different cut-off potentials. Reprinted from ref. (Okada et al. 2006) with permission. b Voltage profiles along	Fig. 10 a Initial charge/discharge curves of NaFeO2 on the dependence of different cut-off potentials. Reprinted from ref. (Okada et al. 2006) with permission. b Voltage profiles along	Fig. 10 a Initial charge/discharge curves of NaFeO2 on the dependence of different cut-off potentials. Reprinted from ref. (Okada et al. 2006) with permission. b Voltage profiles along
16	6	6	136	#/texts/120	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	left	None	None	p16:page_body:left:white	[255, 255, 255]	white	False	False	[46.77, 279.28, 110.59, 156.79]	Fig. 11 a Stability domain of the different structural types observed for as-synthesized NaxMnO2 compounds. Reproduced from ref. (Clément et al. 2015) with permission. b Schematic representations of β -NaMnO2 and an int…	Fig. 11 a Stability domain of the different structural types observed for as-synthesized NaxMnO2 compounds. Reproduced from ref. (Clément et al. 2015) with permission. b Schematic representations of β -NaMnO2 and an int…	Fig. 11 a Stability domain of the different structural types observed for as-synthesized NaxMnO2 compounds. Reproduced from ref. (Clément et al. 2015) with permission. b Schematic representations of β -NaMnO2 and an intergrowth model between α - and β -NaMnO2. Reproduced from ref. (Billaud et al. 2014a) with permission. c , d Voltage profiles of α -NaMnO2 and the complex structure. Reproduced from ref. (Ma et al. 2011), (Billaud et al. 2014a) with permissions	Fig. 11 a Stability domain of the different structural types observed for as-synthesized NaxMnO2 compounds. Reproduced from ref. (Clément et al. 2015) with permission. b Schematic representations of β -NaMnO2 and an intergrowth model between α - and β -NaMnO2. Reproduced from ref. (Billaud et al. 2014a) with permission. c , d Voltage profiles of α -NaMnO2 and the complex structure. Reproduced from ref. (Ma et al. 2011), (Billaud et al. 2014a) with permissions
17	2	1	137	#/texts/121	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	left	None	None	p17:top_margin:left:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
17	3	2	138	#/texts/122	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	right	None	None	p17:top_margin:right:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 67.04, 7.44]	Page 17 of 40 160	Page 17 of 40 160	Page 17 of 40 160	Page 17 of 40 160
17	5	5	141	#/texts/124	caption	caption	False	low	docling_caption	docling_caption						False	None	page_body	right	None	None	p17:page_body:right:white	[255, 255, 255]	white	False	False	[284.88, 601.25, 215.47, 37.5]	Fig. 12 a , b Charge-discharge curves of o -NMO ( a ) and h -NMO ( b ). c , d Operando XRD patterns of o -NMO ( c ) and h -NMO ( d ) over initial charge/discharge curves. Reproduced from ref. (Kumakura et al. 2016) with…	Fig. 12 a , b Charge-discharge curves of o -NMO ( a ) and h -NMO ( b ). c , d Operando XRD patterns of o -NMO ( c ) and h -NMO ( d ) over initial charge/discharge curves. Reproduced from ref. (Kumakura et al. 2016) with…	Fig. 12 a , b Charge-discharge curves of o -NMO ( a ) and h -NMO ( b ). c , d Operando XRD patterns of o -NMO ( c ) and h -NMO ( d ) over initial charge/discharge curves. Reproduced from ref. (Kumakura et al. 2016) with permission	Fig. 12 a , b Charge-discharge curves of o -NMO ( a ) and h -NMO ( b ). c , d Operando XRD patterns of o -NMO ( c ) and h -NMO ( d ) over initial charge/discharge curves. Reproduced from ref. (Kumakura et al. 2016) with permission
18	1	1	142	#/texts/125	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p18:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
18	2	2	143	#/texts/126	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p18:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 18 of 40	Page 18 of 40	Page 18 of 40	Page 18 of 40
18	4	3	144	#/texts/128	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	top_margin	column_1_of_2	1	2	p18:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 54.43, 110.65, 126.91]	Fig. 13 a Schematic representation of the tunnel Na0.44MnO2. b Voltage profiles of the monocrystal Na0.44MnO2 nanoplates. c Cyclic voltammograms (CVs) of the Na0.44MnO2 electrode between 2.0 and 4.0 Vat a scanning rate …	Fig. 13 a Schematic representation of the tunnel Na0.44MnO2. b Voltage profiles of the monocrystal Na0.44MnO2 nanoplates. c Cyclic voltammograms (CVs) of the Na0.44MnO2 electrode between 2.0 and 4.0 Vat a scanning rate …	Fig. 13 a Schematic representation of the tunnel Na0.44MnO2. b Voltage profiles of the monocrystal Na0.44MnO2 nanoplates. c Cyclic voltammograms (CVs) of the Na0.44MnO2 electrode between 2.0 and 4.0 Vat a scanning rate of 0.1 mV s -1 . d Corresponding insitu XRD patterns over the voltage scanning. Reproduced from ref. (He et al. 2016) with permission	Fig. 13 a Schematic representation of the tunnel Na0.44MnO2. b Voltage profiles of the monocrystal Na0.44MnO2 nanoplates. c Cyclic voltammograms (CVs) of the Na0.44MnO2 electrode between 2.0 and 4.0 Vat a scanning rate of 0.1 mV s -1 . d Corresponding insitu XRD patterns over the voltage scanning. Reproduced from ref. (He et al. 2016) with permission
18	3	6	147	#/texts/127	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p18:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
19	2	1	149	#/texts/132	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p19:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
19	5	4	152	#/texts/135	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_1_of_2	1	2	p19:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 446.44, 199.79, 21.16]	Fe- and Mn-based polyanion compounds as SIB cathodes	Fe- and Mn-based polyanion compounds as SIB cathodes	Fe- and Mn-based polyanion compounds as SIB cathodes	Fe- and Mn-based polyanion compounds as SIB cathodes
19	7	6	154	#/texts/137	caption	caption	False	low	docling_caption	docling_caption						False	None	page_body	column_1_of_2	1	2	p19:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 543.58, 110.57, 96.98]	Fig. 14 Phase evolution in Na0.67Mn0.5Fe0.5O2 and Nisubstituted Na0.67Mn0.65Ni0.15Fe0.2O2 over the first cycle, and schematic illustration of Mn/Fe migration into tetrahedral sites in the Na space at high potential. Rep…	Fig. 14 Phase evolution in Na0.67Mn0.5Fe0.5O2 and Nisubstituted Na0.67Mn0.65Ni0.15Fe0.2O2 over the first cycle, and schematic illustration of Mn/Fe migration into tetrahedral sites in the Na space at high potential. Rep…	Fig. 14 Phase evolution in Na0.67Mn0.5Fe0.5O2 and Nisubstituted Na0.67Mn0.65Ni0.15Fe0.2O2 over the first cycle, and schematic illustration of Mn/Fe migration into tetrahedral sites in the Na space at high potential. Reproduced from ref. (Talaie et al. 2015) with permission	Fig. 14 Phase evolution in Na0.67Mn0.5Fe0.5O2 and Nisubstituted Na0.67Mn0.65Ni0.15Fe0.2O2 over the first cycle, and schematic illustration of Mn/Fe migration into tetrahedral sites in the Na space at high potential. Reproduced from ref. (Talaie et al. 2015) with permission
19	3	7	155	#/texts/133	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p19:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 67.04, 7.44]	Page 19 of 40 160	Page 19 of 40 160	Page 19 of 40 160	Page 19 of 40 160
19	9	9	157	#/texts/139	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_2_of_2	2	2	p19:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 147.55, 114.29, 8.65]	Fe-and Mn-based phosphates	Fe-and Mn-based phosphates	Fe-and Mn-based phosphates	Fe-and Mn-based phosphates
20	2	1	159	#/texts/141	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p20:body_region:0	top_margin	column_1_of_2	1	2	p20:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
20	3	2	160	#/texts/142	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p20:body_region:0	top_margin	column_1_of_2	1	2	p20:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 20 of 40	Page 20 of 40	Page 20 of 40	Page 20 of 40
20	4	6	164	#/texts/143	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p20:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
20	8	8	166	#/texts/146	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_2_of_2	2	2	p20:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 131.62, 134.79, 8.65]	Fe- and Mn-based pyrophosphates	Fe- and Mn-based pyrophosphates	Fe- and Mn-based pyrophosphates	Fe- and Mn-based pyrophosphates
21	1	1	169	#/texts/149	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	left	None	None	p21:top_margin:left:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
21	2	2	170	#/texts/150	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	right	None	None	p21:top_margin:right:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 67.04, 7.44]	Page 21 of 40 160	Page 21 of 40 160	Page 21 of 40 160	Page 21 of 40 160
21	3	3	171	#/texts/151	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	top_margin	left	None	None	p21:top_margin:left:white	[255, 255, 255]	white	False	False	[46.77, 52.9, 110.62, 138.37]	Fig. 15 a -e Crystal structures of olivine NFP, maricite NFP, NASICON-type Na3Fe2(PO4)3, layered Na3Fe3(PO4)4, alluauditetype Na2Fe3(PO4)3. Reproduced from ref. (Naoaki and Shinichi 2014) with permission. Their typical …	Fig. 15 a -e Crystal structures of olivine NFP, maricite NFP, NASICON-type Na3Fe2(PO4)3, layered Na3Fe3(PO4)4, alluauditetype Na2Fe3(PO4)3. Reproduced from ref. (Naoaki and Shinichi 2014) with permission. Their typical …	Fig. 15 a -e Crystal structures of olivine NFP, maricite NFP, NASICON-type Na3Fe2(PO4)3, layered Na3Fe3(PO4)4, alluauditetype Na2Fe3(PO4)3. Reproduced from ref. (Naoaki and Shinichi 2014) with permission. Their typical charge/discharge curves are shown on the right side. Reproduced from ref. (Ali et al. 2016), (Kim et al. 2015b), (Trad et al. 2010b), (Huang et al. 2015b), and (Liu et al. 2017b) with permissions	Fig. 15 a -e Crystal structures of olivine NFP, maricite NFP, NASICON-type Na3Fe2(PO4)3, layered Na3Fe3(PO4)4, alluauditetype Na2Fe3(PO4)3. Reproduced from ref. (Naoaki and Shinichi 2014) with permission. Their typical charge/discharge curves are shown on the right side. Reproduced from ref. (Ali et al. 2016), (Kim et al. 2015b), (Trad et al. 2010b), (Huang et al. 2015b), and (Liu et al. 2017b) with permissions
22	2	1	172	#/texts/152	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p22:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
22	3	2	173	#/texts/153	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p22:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 22 of 40	Page 22 of 40	Page 22 of 40	Page 22 of 40
22	10	6	177	#/texts/160	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_1_of_2	1	2	p22:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 624.25, 215.51, 38.76]	Fig. 16 a -c Triclinic structure ( P -1) of Na2FeP2O7 and corresponding electrochemical properties. Reproduced from ref. (Barpanda et al. 2012) with permission. d Voltage profiles of P -1 Na2MnP2O7. Reproduced from ref.…	Fig. 16 a -c Triclinic structure ( P -1) of Na2FeP2O7 and corresponding electrochemical properties. Reproduced from ref. (Barpanda et al. 2012) with permission. d Voltage profiles of P -1 Na2MnP2O7. Reproduced from ref.…	Fig. 16 a -c Triclinic structure ( P -1) of Na2FeP2O7 and corresponding electrochemical properties. Reproduced from ref. (Barpanda et al. 2012) with permission. d Voltage profiles of P -1 Na2MnP2O7. Reproduced from ref. (Park et al. 2013) with	Fig. 16 a -c Triclinic structure ( P -1) of Na2FeP2O7 and corresponding electrochemical properties. Reproduced from ref. (Barpanda et al. 2012) with permission. d Voltage profiles of P -1 Na2MnP2O7. Reproduced from ref. (Park et al. 2013) with
22	4	7	178	#/texts/154	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p22:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
22	11	11	182	#/texts/161	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_2_of_2	2	2	p22:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 623.9, 215.53, 29.14]	permission. e , f Crystal structure of β -Na2MnP2O7 (triclinic P 1) and its voltage profiles. Reproduced from ref. (Barpanda et al. 2013b) with permission	permission. e , f Crystal structure of β -Na2MnP2O7 (triclinic P 1) and its voltage profiles. Reproduced from ref. (Barpanda et al. 2013b) with permission	permission. e , f Crystal structure of β -Na2MnP2O7 (triclinic P 1) and its voltage profiles. Reproduced from ref. (Barpanda et al. 2013b) with permission	permission. e , f Crystal structure of β -Na2MnP2O7 (triclinic P 1) and its voltage profiles. Reproduced from ref. (Barpanda et al. 2013b) with permission
23	1	1	183	#/texts/162	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	left	None	None	p23:top_margin:left:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
23	2	2	184	#/texts/163	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	right	None	None	p23:top_margin:right:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 67.04, 7.44]	Page 23 of 40 160	Page 23 of 40 160	Page 23 of 40 160	Page 23 of 40 160
23	3	3	185	#/texts/164	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	left	None	None	p23:page_body:left:white	[255, 255, 255]	white	False	False	[46.77, 629.3, 215.52, 27.31]	Fig. 17 Crystal structures of alluaudite-type Na2Fe2(SO4)3 ( a ), eldfellite NaFe(SO4)2 ( b ), Na2Fe2(C2O4)3·2H2O ( c ), and Na2Fe(C2O4)F2 with their voltage profiles are shown on the right	Fig. 17 Crystal structures of alluaudite-type Na2Fe2(SO4)3 ( a ), eldfellite NaFe(SO4)2 ( b ), Na2Fe2(C2O4)3·2H2O ( c ), and Na2Fe(C2O4)F2 with their voltage profiles are shown on the right	Fig. 17 Crystal structures of alluaudite-type Na2Fe2(SO4)3 ( a ), eldfellite NaFe(SO4)2 ( b ), Na2Fe2(C2O4)3·2H2O ( c ), and Na2Fe(C2O4)F2 with their voltage profiles are shown on the right	Fig. 17 Crystal structures of alluaudite-type Na2Fe2(SO4)3 ( a ), eldfellite NaFe(SO4)2 ( b ), Na2Fe2(C2O4)3·2H2O ( c ), and Na2Fe(C2O4)F2 with their voltage profiles are shown on the right
23	4	4	186	#/texts/165	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	right	None	None	p23:page_body:right:white	[255, 255, 255]	white	False	False	[284.88, 629.29, 215.45, 17.33]	side. Reproduced from ref. (Barpanda et al. 2014b), (Singh et al. 2015), (Yao et al. 2017b), and (Yao et al. 2017a) with permissions	side. Reproduced from ref. (Barpanda et al. 2014b), (Singh et al. 2015), (Yao et al. 2017b), and (Yao et al. 2017a) with permissions	side. Reproduced from ref. (Barpanda et al. 2014b), (Singh et al. 2015), (Yao et al. 2017b), and (Yao et al. 2017a) with permissions	side. Reproduced from ref. (Barpanda et al. 2014b), (Singh et al. 2015), (Yao et al. 2017b), and (Yao et al. 2017a) with permissions
24	1	1	187	#/texts/166	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	left	None	None	p24:top_margin:left:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 67.14, 7.44]	160 Page 24 of 40	160 Page 24 of 40	160 Page 24 of 40	160 Page 24 of 40
24	2	2	188	#/texts/167	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	right	None	None	p24:top_margin:right:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
24	3	3	189	#/texts/168	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	top_margin	left	None	None	p24:top_margin:left:white	[255, 255, 255]	white	False	False	[46.77, 52.9, 110.66, 178.23]	Fig. 18 a -d Crystal structures of Na2FePO4F ( a ), Na2MnPO4F ( b ), Na4Fe3(PO4)2(P2O7) ( c ), and Na3MnPO4CO3 ( d ). Reproduced from ref. (Naoaki and Shinichi 2014) with permission. Their representative voltage profile…	Fig. 18 a -d Crystal structures of Na2FePO4F ( a ), Na2MnPO4F ( b ), Na4Fe3(PO4)2(P2O7) ( c ), and Na3MnPO4CO3 ( d ). Reproduced from ref. (Naoaki and Shinichi 2014) with permission. Their representative voltage profile…	Fig. 18 a -d Crystal structures of Na2FePO4F ( a ), Na2MnPO4F ( b ), Na4Fe3(PO4)2(P2O7) ( c ), and Na3MnPO4CO3 ( d ). Reproduced from ref. (Naoaki and Shinichi 2014) with permission. Their representative voltage profiles are shown on the right side. Reproduced from ref. (Law et al. 2015), (Lin et al. 2014), (Wu et al. 2016), and (Huang et al. 2014) with permissions. e Highperformance Na4Mn3(PO4)2(P2O7), which was ascribed to the cooperative JahnTeller effect of Mn 3+ . Reproduced from ref. (Kim et al. 2015a) with permission	Fig. 18 a -d Crystal structures of Na2FePO4F ( a ), Na2MnPO4F ( b ), Na4Fe3(PO4)2(P2O7) ( c ), and Na3MnPO4CO3 ( d ). Reproduced from ref. (Naoaki and Shinichi 2014) with permission. Their representative voltage profiles are shown on the right side. Reproduced from ref. (Law et al. 2015), (Lin et al. 2014), (Wu et al. 2016), and (Huang et al. 2014) with permissions. e Highperformance Na4Mn3(PO4)2(P2O7), which was ascribed to the cooperative JahnTeller effect of Mn 3+ . Reproduced from ref. (Kim et al. 2015a) with permission
25	3	1	190	#/texts/169	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_1_of_2	1	2	p25:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
25	5	2	191	#/texts/171	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_1_of_2	1	2	p25:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 387.39, 215.52, 37.23]	Fig. 19 a Crystal structure of PBAs with a face-centered cubic phase. b Charge and discharge curves of Na2MnMn(CN)6. c , d The schematic illustrations of the step-wise structural evolution over the extraction/insertion …	Fig. 19 a Crystal structure of PBAs with a face-centered cubic phase. b Charge and discharge curves of Na2MnMn(CN)6. c , d The schematic illustrations of the step-wise structural evolution over the extraction/insertion …	Fig. 19 a Crystal structure of PBAs with a face-centered cubic phase. b Charge and discharge curves of Na2MnMn(CN)6. c , d The schematic illustrations of the step-wise structural evolution over the extraction/insertion of Na + ions. Reproduced from ref.	Fig. 19 a Crystal structure of PBAs with a face-centered cubic phase. b Charge and discharge curves of Na2MnMn(CN)6. c , d The schematic illustrations of the step-wise structural evolution over the extraction/insertion of Na + ions. Reproduced from ref.
25	4	4	193	#/texts/170	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p25:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 67.04, 7.44]	Page 25 of 40 160	Page 25 of 40 160	Page 25 of 40 160	Page 25 of 40 160
25	6	5	194	#/texts/172	caption	caption	False	low	docling_caption	docling_caption						False	None	page_body	column_2_of_2	2	2	p25:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 387.39, 215.51, 27.25]	(Lee et al. 2014) with permission. e , f Voltage profile and cycling performance of a Prussian blue@C composite. Reproduced from ref. (Jiang et al. 2016) with permission	(Lee et al. 2014) with permission. e , f Voltage profile and cycling performance of a Prussian blue@C composite. Reproduced from ref. (Jiang et al. 2016) with permission	(Lee et al. 2014) with permission. e , f Voltage profile and cycling performance of a Prussian blue@C composite. Reproduced from ref. (Jiang et al. 2016) with permission	(Lee et al. 2014) with permission. e , f Voltage profile and cycling performance of a Prussian blue@C composite. Reproduced from ref. (Jiang et al. 2016) with permission
26	2	1	198	#/texts/175	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p26:body_region:0	top_margin	column_1_of_2	1	2	p26:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
26	3	2	199	#/texts/176	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p26:body_region:0	top_margin	column_1_of_2	1	2	p26:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 26 of 40	Page 26 of 40	Page 26 of 40	Page 26 of 40
26	4	6	203	#/texts/177	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p26:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
26	9	9	206	#/texts/181	section_header	body_heading	False	low	body_heading	body_heading						False	None	page_body	column_2_of_2	2	2	p26:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 579.95, 161.55, 8.75]	Fe- and Mn-based hexacyanometalates	Fe- and Mn-based hexacyanometalates	Fe- and Mn-based hexacyanometalates	Fe- and Mn-based hexacyanometalates
27	1	1	208	#/texts/183	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	left	None	None	p27:top_margin:left:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
27	2	2	209	#/texts/184	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	right	None	None	p27:top_margin:right:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 67.04, 7.44]	Page 27 of 40 160	Page 27 of 40 160	Page 27 of 40 160	Page 27 of 40 160
27	4	4	211	#/texts/186	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	right	None	None	p27:page_body:right:white	[255, 255, 255]	white	False	False	[287.89, 333.72, 7.44, 327.83]	Table 1 Electrochemical properties of representative Fe- and Mn-based cathode materials for LIBs	Table 1 Electrochemical properties of representative Fe- and Mn-based cathode materials for LIBs	Table 1 Electrochemical properties of representative Fe- and Mn-based cathode materials for LIBs	Table 1 Electrochemical properties of representative Fe- and Mn-based cathode materials for LIBs
28	1	1	212	#/texts/187	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	left	None	None	p28:top_margin:left:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
28	2	2	213	#/texts/188	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	left	None	None	p28:top_margin:left:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 28 of 40	Page 28 of 40	Page 28 of 40	Page 28 of 40
28	3	3	214	#/texts/189	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	right	None	None	p28:top_margin:right:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
28	4	4	215	#/texts/190	caption	caption	False	low	docling_caption	docling_caption						False	None	page_body	left	None	None	p28:page_body:left:white	[255, 255, 255]	white	False	False	[152.79, 333.85, 7.44, 327.41]	Table 2 Electrochemical properties of representative Fe- and Mn-based cathode materials for SIBs	Table 2 Electrochemical properties of representative Fe- and Mn-based cathode materials for SIBs	Table 2 Electrochemical properties of representative Fe- and Mn-based cathode materials for SIBs	Table 2 Electrochemical properties of representative Fe- and Mn-based cathode materials for SIBs
29	1	1	216	#/texts/191	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p29:body_region:0	top_margin	column_1_of_2	1	2	p29:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
29	3	2	217	#/texts/193	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						True	p29:body_region:0	front_matter	column_1_of_2	1	2	p29:front_matter:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 213.91, 378.27, 7.44]	Fig. 20 Illustration of the energy densities of those Fe- and Mn-based cathode materials for LIBs ( a ) and SIBs ( b )	Fig. 20 Illustration of the energy densities of those Fe- and Mn-based cathode materials for LIBs ( a ) and SIBs ( b )	Fig. 20 Illustration of the energy densities of those Fe- and Mn-based cathode materials for LIBs ( a ) and SIBs ( b )	Fig. 20 Illustration of the energy densities of those Fe- and Mn-based cathode materials for LIBs ( a ) and SIBs ( b )
29	5	4	219	#/texts/195	section_header	body_heading	False	low	body_heading	body_heading						True	p29:body_region:0	body_zone	column_1_of_2	1	2	p29:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 293.54, 93.5, 8.75]	Summary and outlook	Summary and outlook	Summary and outlook	Summary and outlook
29	2	7	222	#/texts/192	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p29:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 67.04, 7.44]	Page 29 of 40 160	Page 29 of 40 160	Page 29 of 40 160	Page 29 of 40 160
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30	2	2	229	#/texts/203	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p30:body_region:0	top_margin	column_1_of_2	1	2	p30:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 30 of 40	Page 30 of 40	Page 30 of 40	Page 30 of 40
30	5	4	231	#/texts/206	text	back_matter_heading	False	low	back_matter_heading	back_matter_heading					stop_trigger	True	p30:body_region:0	page_body	column_1_of_2	1	2	p30:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 468.74, 215.52, 17.28]	Acknowledgments Funding support from ARC through its LP and DP programs is acknowledged.	Acknowledgments Funding support from ARC through its LP and DP programs is acknowledged.	Acknowledgments Funding support from ARC through its LP and DP programs is acknowledged.	Acknowledgments Funding support from ARC through its LP and DP programs is acknowledged.
30	6	5	232	#/texts/207	section_header	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p30:body_region:0	page_body	column_1_of_2	1	2	p30:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 501.12, 121.83, 7.44]	Compliance with ethical standards	Compliance with ethical standards	Compliance with ethical standards	Compliance with ethical standards
30	7	6	233	#/texts/208	text	back_matter_heading	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p30:body_region:0	page_body	column_1_of_2	1	2	p30:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 523.51, 215.49, 17.33]	Conflict of interest The authors declare that they have no conflict of interest.	Conflict of interest The authors declare that they have no conflict of interest.	Conflict of interest The authors declare that they have no conflict of interest.	Conflict of interest The authors declare that they have no conflict of interest.
30	8	7	234	#/texts/209	section_header	back_matter_heading	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p30:body_region:0	page_body	column_1_of_2	1	2	p30:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 564.25, 44.94, 8.75]	References	References	References	References
30	9	8	235	#/texts/210	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p30:body_region:0	page_body	column_1_of_2	1	2	p30:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 594.66, 215.52, 27.36]	Adamczyk E, Pralong V (2017) Na2Mn3O7: a suitable electrode material for Na-Ion batteries? Chem Mater 29:4645 -4648. https://doi.org/10.1021/acs.chemmater.7b01390	Adamczyk E, Pralong V (2017) Na2Mn3O7: a suitable electrode material for Na-Ion batteries? Chem Mater 29:4645 -4648.	Adamczyk E, Pralong V (2017) Na2Mn3O7: a suitable electrode material for Na-Ion batteries? Chem Mater 29:4645 -4648. https://doi.org/10.1021/acs.chemmater.7b01390	Adamczyk E, Pralong V (2017) Na2Mn3O7: a suitable electrode material for Na-Ion batteries? Chem Mater 29:4645 -4648.
30	10	9	236	#/texts/211	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p30:body_region:0	page_body	column_1_of_2	1	2	p30:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 625.67, 215.52, 37.44]	Ali G, Lee J-H, Susanto D, Choi S-W, Cho BW, Nam K-W, Chung KY (2016) Polythiophene-wrapped olivine NaFePO4 as a cathode for Na-Ion batteries. ACS Appl Mater Interfaces 8: 15422 -15429. https://doi.org/10.1021/acsami.6b…	Ali G, Lee J-H, Susanto D, Choi S-W, Cho BW, Nam K-W, Chung KY (2016) Polythiophene-wrapped olivine NaFePO4 as a cathode for Na-Ion batteries. ACS Appl Mater Interfaces 8: 15422 -15429.	Ali G, Lee J-H, Susanto D, Choi S-W, Cho BW, Nam K-W, Chung KY (2016) Polythiophene-wrapped olivine NaFePO4 as a cathode for Na-Ion batteries. ACS Appl Mater Interfaces 8: 15422 -15429. https://doi.org/10.1021/acsami.6b04014	Ali G, Lee J-H, Susanto D, Choi S-W, Cho BW, Nam K-W, Chung KY (2016) Polythiophene-wrapped olivine NaFePO4 as a cathode for Na-Ion batteries. ACS Appl Mater Interfaces 8: 15422 -15429.
30	3	10	237	#/texts/204	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p30:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
30	11	11	238	#/texts/212	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 55.45, 215.52, 47.37]	Amalraj F et al (2013) Study of the lithium-rich integrated compound xLi2MnO3·(1-x)LiMO2 (x around 0.5; M = Mn, Ni, Co; 2:2:1) and its electrochemical activity as positive electrode in lithium cells. J Electrochem Soc 1…	Amalraj F et al (2013) Study of the lithium-rich integrated compound xLi2MnO3·(1-x)LiMO2 (x around 0.5; M = Mn, Ni, Co; 2:2:1) and its electrochemical activity as positive electrode in lithium cells. J Electrochem Soc 1…	Amalraj F et al (2013) Study of the lithium-rich integrated compound xLi2MnO3·(1-x)LiMO2 (x around 0.5; M = Mn, Ni, Co; 2:2:1) and its electrochemical activity as positive electrode in lithium cells. J Electrochem Soc 160:A324 -A337. https://doi.org/10.1149/2.070302jes	Amalraj F et al (2013) Study of the lithium-rich integrated compound xLi2MnO3·(1-x)LiMO2 (x around 0.5; M = Mn, Ni, Co; 2:2:1) and its electrochemical activity as positive electrode in lithium cells. J Electrochem Soc 160:A324 -A337.
30	12	12	239	#/texts/213	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 105.44, 215.47, 47.37]	Amine K, Tukamoto H, Yasuda H, Fujita Y (1997) Preparation and electrochemical investigation of LiMn2 -xMexO4 (Me: Ni, Fe, and x = 0.5, 1) cathode materials for secondary lithium batteries. J Power Sources 68:604 -608. …	Amine K, Tukamoto H, Yasuda H, Fujita Y (1997) Preparation and electrochemical investigation of LiMn2 -xMexO4 (Me: Ni, Fe, and x = 0.5, 1) cathode materials for secondary lithium batteries. J Power Sources 68:604 -608. …	Amine K, Tukamoto H, Yasuda H, Fujita Y (1997) Preparation and electrochemical investigation of LiMn2 -xMexO4 (Me: Ni, Fe, and x = 0.5, 1) cathode materials for secondary lithium batteries. J Power Sources 68:604 -608. https://doi. org/10.1016/S0378-7753(96)02590-6	Amine K, Tukamoto H, Yasuda H, Fujita Y (1997) Preparation and electrochemical investigation of LiMn2 -xMexO4 (Me: Ni, Fe, and x = 0.5, 1) cathode materials for secondary lithium batteries. J Power Sources 68:604 -608. org/10.1016/S0378-7753(96)02590-6
30	13	13	240	#/texts/214	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 155.5, 215.52, 27.4]	Armstrong AR, Bruce PG (1996) Synthesis of layered LiMnO2 as an electrode for rechargeable lithium batteries. Nature 381: 499 -500. https://doi.org/10.1038/381499a0	Armstrong AR, Bruce PG (1996) Synthesis of layered LiMnO2 as an electrode for rechargeable lithium batteries. Nature 381: 499 -500.	Armstrong AR, Bruce PG (1996) Synthesis of layered LiMnO2 as an electrode for rechargeable lithium batteries. Nature 381: 499 -500. https://doi.org/10.1038/381499a0	Armstrong AR, Bruce PG (1996) Synthesis of layered LiMnO2 as an electrode for rechargeable lithium batteries. Nature 381: 499 -500.
30	14	14	241	#/texts/215	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 185.48, 215.52, 47.47]	Armstrong AR, Holzapfel M, Novák P, Johnson CS, Kang S-H, Thackeray MM, Bruce PG (2006) Demonstrating oxygen loss and associated structural reorganization in the lithium battery cathode Li[Ni0.2Li0.2Mn0.6]O2. J Am Chem …	Armstrong AR, Holzapfel M, Novák P, Johnson CS, Kang S-H, Thackeray MM, Bruce PG (2006) Demonstrating oxygen loss and associated structural reorganization in the lithium battery cathode Li[Ni0.2Li0.2Mn0.6]O2. J Am Chem …	Armstrong AR, Holzapfel M, Novák P, Johnson CS, Kang S-H, Thackeray MM, Bruce PG (2006) Demonstrating oxygen loss and associated structural reorganization in the lithium battery cathode Li[Ni0.2Li0.2Mn0.6]O2. J Am Chem Soc 128:8694 -8698. https://doi.org/10.1021/ja062027+	Armstrong AR, Holzapfel M, Novák P, Johnson CS, Kang S-H, Thackeray MM, Bruce PG (2006) Demonstrating oxygen loss and associated structural reorganization in the lithium battery cathode Li[Ni0.2Li0.2Mn0.6]O2. J Am Chem Soc 128:8694 -8698.
30	15	15	242	#/texts/216	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 235.48, 215.44, 37.34]	Armstrong AR, Tee DW, La Mantia F, Novák P, Bruce PG (2008) Synthesis of tetrahedral LiFeO2 and Its behavior as a cathode in rechargeable lithium batteries. J Am Chem Soc 130:3554 -3559. https://doi.org/10.1021/ja077651g	Armstrong AR, Tee DW, La Mantia F, Novák P, Bruce PG (2008) Synthesis of tetrahedral LiFeO2 and Its behavior as a cathode in rechargeable lithium batteries. J Am Chem Soc 130:3554 -3559.	Armstrong AR, Tee DW, La Mantia F, Novák P, Bruce PG (2008) Synthesis of tetrahedral LiFeO2 and Its behavior as a cathode in rechargeable lithium batteries. J Am Chem Soc 130:3554 -3559. https://doi.org/10.1021/ja077651g	Armstrong AR, Tee DW, La Mantia F, Novák P, Bruce PG (2008) Synthesis of tetrahedral LiFeO2 and Its behavior as a cathode in rechargeable lithium batteries. J Am Chem Soc 130:3554 -3559.
30	16	16	243	#/texts/217	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 275.5, 215.43, 37.34]	Armstrong AR, Kuganathan N, Islam MS, Bruce PG (2011) Structure and lithium transport pathways in Li2FeSiO4 cathodes for lithium batteries. J Am Chem Soc 133:13031 -13035. https://doi.org/10.1021/ja2018543	Armstrong AR, Kuganathan N, Islam MS, Bruce PG (2011) Structure and lithium transport pathways in Li2FeSiO4 cathodes for lithium batteries. J Am Chem Soc 133:13031 -13035.	Armstrong AR, Kuganathan N, Islam MS, Bruce PG (2011) Structure and lithium transport pathways in Li2FeSiO4 cathodes for lithium batteries. J Am Chem Soc 133:13031 -13035. https://doi.org/10.1021/ja2018543	Armstrong AR, Kuganathan N, Islam MS, Bruce PG (2011) Structure and lithium transport pathways in Li2FeSiO4 cathodes for lithium batteries. J Am Chem Soc 133:13031 -13035.
30	17	17	244	#/texts/218	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 313.99, 215.54, 38.87]	Armstrong MJ, O ' Dwyer C, Macklin WJ, Holmes JD (2014) Evaluating the performance of nanostructured materials as lithium-ion battery electrodes. Nano Res 7:1 -62. https://doi. org/10.1007/s12274-013-0375-x	Armstrong MJ, O ' Dwyer C, Macklin WJ, Holmes JD (2014) Evaluating the performance of nanostructured materials as lithium-ion battery electrodes. Nano Res 7:1 -62. org/10.1007/s12274-013-0375-x	Armstrong MJ, O ' Dwyer C, Macklin WJ, Holmes JD (2014) Evaluating the performance of nanostructured materials as lithium-ion battery electrodes. Nano Res 7:1 -62. https://doi. org/10.1007/s12274-013-0375-x	Armstrong MJ, O ' Dwyer C, Macklin WJ, Holmes JD (2014) Evaluating the performance of nanostructured materials as lithium-ion battery electrodes. Nano Res 7:1 -62. org/10.1007/s12274-013-0375-x
30	18	18	245	#/texts/219	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 355.54, 215.52, 57.35]	Arroyo-de Dompablo ME, Armand M, Tarascon JM, Amador U (2006) On-demand design of polyoxianionic cathode materials based on electronegativity correlations: an exploration of the Li2MSiO4 system (M=Fe, Mn, Co, Ni). Elect…	Arroyo-de Dompablo ME, Armand M, Tarascon JM, Amador U (2006) On-demand design of polyoxianionic cathode materials based on electronegativity correlations: an exploration of the Li2MSiO4 system (M=Fe, Mn, Co, Ni). Elect…	Arroyo-de Dompablo ME, Armand M, Tarascon JM, Amador U (2006) On-demand design of polyoxianionic cathode materials based on electronegativity correlations: an exploration of the Li2MSiO4 system (M=Fe, Mn, Co, Ni). Electrochem Commun 8:1292 -1298. https://doi.org/10.1016/j. elecom.2006.06.003	Arroyo-de Dompablo ME, Armand M, Tarascon JM, Amador U (2006) On-demand design of polyoxianionic cathode materials based on electronegativity correlations: an exploration of the Li2MSiO4 system (M=Fe, Mn, Co, Ni). Electrochem Commun 8:1292 -1298.
30	19	19	246	#/texts/220	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 415.51, 215.49, 47.37]	Banerjee A, Araujo RB, Ahuja R (2016) Unveiling the thermodynamic and kinetic properties of NaxFe(SO4)2 (x = 0-2): toward a high-capacity and low-cost cathode material. J Mater Chem A 4:17960 -17969. https://doi.org/10.…	Banerjee A, Araujo RB, Ahuja R (2016) Unveiling the thermodynamic and kinetic properties of NaxFe(SO4)2 (x = 0-2): toward a high-capacity and low-cost cathode material. J Mater Chem A 4:17960 -17969.	Banerjee A, Araujo RB, Ahuja R (2016) Unveiling the thermodynamic and kinetic properties of NaxFe(SO4)2 (x = 0-2): toward a high-capacity and low-cost cathode material. J Mater Chem A 4:17960 -17969. https://doi.org/10.1039/C6 TA05330K	Banerjee A, Araujo RB, Ahuja R (2016) Unveiling the thermodynamic and kinetic properties of NaxFe(SO4)2 (x = 0-2): toward a high-capacity and low-cost cathode material. J Mater Chem A 4:17960 -17969.
30	20	20	247	#/texts/221	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 465.57, 215.52, 37.44]	Banerjee A, Shilina Y, Ziv B, Ziegelbauer JM, Luski S, Aurbach D, Halalay IC (2017) On the oxidation state of manganese ions in Li-Ion battery electrolyte solutions. J Am Chem Soc 139:1738 -1741. https://doi.org/10.1021…	Banerjee A, Shilina Y, Ziv B, Ziegelbauer JM, Luski S, Aurbach D, Halalay IC (2017) On the oxidation state of manganese ions in Li-Ion battery electrolyte solutions. J Am Chem Soc 139:1738 -1741.	Banerjee A, Shilina Y, Ziv B, Ziegelbauer JM, Luski S, Aurbach D, Halalay IC (2017) On the oxidation state of manganese ions in Li-Ion battery electrolyte solutions. J Am Chem Soc 139:1738 -1741. https://doi.org/10.1021/jacs.6b10781	Banerjee A, Shilina Y, Ziv B, Ziegelbauer JM, Luski S, Aurbach D, Halalay IC (2017) On the oxidation state of manganese ions in Li-Ion battery electrolyte solutions. J Am Chem Soc 139:1738 -1741.
30	21	21	248	#/texts/222	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 505.53, 215.5, 47.37]	Barpanda P, Djellab K, Recham N, Armand M, Tarascon J-M (2011) Direct and modified ionothermal synthesis of LiMnPO4 with tunable morphology for rechargeable Li-ion batteries. J Mater Chem 21:10143 -10152. https://doi. o…	Barpanda P, Djellab K, Recham N, Armand M, Tarascon J-M (2011) Direct and modified ionothermal synthesis of LiMnPO4 with tunable morphology for rechargeable Li-ion batteries. J Mater Chem 21:10143 -10152. org/10.1039/C0…	Barpanda P, Djellab K, Recham N, Armand M, Tarascon J-M (2011) Direct and modified ionothermal synthesis of LiMnPO4 with tunable morphology for rechargeable Li-ion batteries. J Mater Chem 21:10143 -10152. https://doi. org/10.1039/C0JM04423G	Barpanda P, Djellab K, Recham N, Armand M, Tarascon J-M (2011) Direct and modified ionothermal synthesis of LiMnPO4 with tunable morphology for rechargeable Li-ion batteries. J Mater Chem 21:10143 -10152. org/10.1039/C0JM04423G
30	22	22	249	#/texts/223	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 555.59, 215.51, 37.34]	Barpanda P et al (2012) Sodium iron pyrophosphate: a novel 3.0V iron-based cathode for sodium-ion batteries. Electrochem Commun 24:116 -119. https://doi.org/10.1016/j. elecom.2012.08.028	Barpanda P et al (2012) Sodium iron pyrophosphate: a novel 3.0V iron-based cathode for sodium-ion batteries. Electrochem Commun 24:116 -119.	Barpanda P et al (2012) Sodium iron pyrophosphate: a novel 3.0V iron-based cathode for sodium-ion batteries. Electrochem Commun 24:116 -119. https://doi.org/10.1016/j. elecom.2012.08.028	Barpanda P et al (2012) Sodium iron pyrophosphate: a novel 3.0V iron-based cathode for sodium-ion batteries. Electrochem Commun 24:116 -119.
30	23	23	250	#/texts/224	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 595.55, 215.4, 27.44]	Barpanda P et al (2013a) Na2FeP2O7: a safe cathode for rechargeable sodium-ion batteries. Chem Mater 25:3480 -3487. https://doi.org/10.1021/cm401657c	Barpanda P et al (2013a) Na2FeP2O7: a safe cathode for rechargeable sodium-ion batteries. Chem Mater 25:3480 -3487.	Barpanda P et al (2013a) Na2FeP2O7: a safe cathode for rechargeable sodium-ion batteries. Chem Mater 25:3480 -3487. https://doi.org/10.1021/cm401657c	Barpanda P et al (2013a) Na2FeP2O7: a safe cathode for rechargeable sodium-ion batteries. Chem Mater 25:3480 -3487.
30	24	24	251	#/texts/225	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p30:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 625.67, 215.44, 37.34]	Barpanda P, Ye T, Avdeev M, Chung S-C, Yamada A (2013b) A new polymorph of Na2MnP2O7 as a 3.6 V cathode material for sodium-ion batteries. J Mater Chem A 1:4194 -4197. https://doi.org/10.1039/C3TA10210F	Barpanda P, Ye T, Avdeev M, Chung S-C, Yamada A (2013b) A new polymorph of Na2MnP2O7 as a 3.6 V cathode material for sodium-ion batteries. J Mater Chem A 1:4194 -4197.	Barpanda P, Ye T, Avdeev M, Chung S-C, Yamada A (2013b) A new polymorph of Na2MnP2O7 as a 3.6 V cathode material for sodium-ion batteries. J Mater Chem A 1:4194 -4197. https://doi.org/10.1039/C3TA10210F	Barpanda P, Ye T, Avdeev M, Chung S-C, Yamada A (2013b) A new polymorph of Na2MnP2O7 as a 3.6 V cathode material for sodium-ion batteries. J Mater Chem A 1:4194 -4197.
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31	4	2	253	#/texts/229	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 55.45, 215.45, 37.34]	Barpanda P, Oyama G, Ling CD, Yamada A (2014a) KröhnkiteType Na2Fe(SO4)2·2H2O as a novel 3.25 V insertion compound for Na-Ion batteries. Chem Mater 26:1297 -1299. https://doi.org/10.1021/cm4033226	Barpanda P, Oyama G, Ling CD, Yamada A (2014a) KröhnkiteType Na2Fe(SO4)2·2H2O as a novel 3.25 V insertion compound for Na-Ion batteries. Chem Mater 26:1297 -1299.	Barpanda P, Oyama G, Ling CD, Yamada A (2014a) KröhnkiteType Na2Fe(SO4)2·2H2O as a novel 3.25 V insertion compound for Na-Ion batteries. Chem Mater 26:1297 -1299. https://doi.org/10.1021/cm4033226	Barpanda P, Oyama G, Ling CD, Yamada A (2014a) KröhnkiteType Na2Fe(SO4)2·2H2O as a novel 3.25 V insertion compound for Na-Ion batteries. Chem Mater 26:1297 -1299.
31	5	3	254	#/texts/230	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 96.15, 215.52, 47.37]	Barpanda P, Oyama G, Nishimura S-i, Chung S-C, Yamada A (2014b) A 3.8-V earth-abundant sodium battery electrode. Nat Commun 5:4358. https://doi.org/10.1038/ncomms5358 https://www.nature.com/articles/ncomms5358 #suppleme…	Barpanda P, Oyama G, Nishimura S-i, Chung S-C, Yamada A (2014b) A 3.8-V earth-abundant sodium battery electrode. Nat Commun 5:4358.	Barpanda P, Oyama G, Nishimura S-i, Chung S-C, Yamada A (2014b) A 3.8-V earth-abundant sodium battery electrode. Nat Commun 5:4358. https://doi.org/10.1038/ncomms5358 https://www.nature.com/articles/ncomms5358 #supplementary-information	Barpanda P, Oyama G, Nishimura S-i, Chung S-C, Yamada A (2014b) A 3.8-V earth-abundant sodium battery electrode. Nat Commun 5:4358.
31	6	4	255	#/texts/231	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 146.88, 215.54, 37.4]	Berthelot R, Carlier D, Delmas C (2010) Electrochemical investigation of the P2 -NaxCoO2 phase diagram. Nat Mater 10:74. https://doi.org/10.1038/nmat2920 https://www.nature. com/articles/nmat2920#supplementary-informati…	Berthelot R, Carlier D, Delmas C (2010) Electrochemical investigation of the P2 -NaxCoO2 phase diagram. Nat Mater 10:74.	Berthelot R, Carlier D, Delmas C (2010) Electrochemical investigation of the P2 -NaxCoO2 phase diagram. Nat Mater 10:74. https://doi.org/10.1038/nmat2920 https://www.nature. com/articles/nmat2920#supplementary-information	Berthelot R, Carlier D, Delmas C (2010) Electrochemical investigation of the P2 -NaxCoO2 phase diagram. Nat Mater 10:74.
31	7	5	256	#/texts/232	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 187.64, 215.5, 37.44]	Billaud J, Clément RJ, Armstrong AR, Canales-Vázquez J, Rozier P, Grey CP, Bruce PG (2014a) β -NaMnO2: a highperformance cathode for sodium-ion batteries. J Am Chem Soc 136:17243 -17248. https://doi.org/10.1021/ja509704t	Billaud J, Clément RJ, Armstrong AR, Canales-Vázquez J, Rozier P, Grey CP, Bruce PG (2014a) β -NaMnO2: a highperformance cathode for sodium-ion batteries. J Am Chem Soc 136:17243 -17248.	Billaud J, Clément RJ, Armstrong AR, Canales-Vázquez J, Rozier P, Grey CP, Bruce PG (2014a) β -NaMnO2: a highperformance cathode for sodium-ion batteries. J Am Chem Soc 136:17243 -17248. https://doi.org/10.1021/ja509704t	Billaud J, Clément RJ, Armstrong AR, Canales-Vázquez J, Rozier P, Grey CP, Bruce PG (2014a) β -NaMnO2: a highperformance cathode for sodium-ion batteries. J Am Chem Soc 136:17243 -17248.
31	8	6	257	#/texts/233	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 228.34, 215.54, 37.34]	Billaud J et al (2014b) Na0.67Mn1-xMgxO2 (0 [less-than-orequal] x [less-than-or-equal] 0.2): a high capacity cathode for sodium-ion batteries. Energy Environ Sci 7:1387 -1391. https://doi.org/10.1039/C4EE00465E	Billaud J et al (2014b) Na0.67Mn1-xMgxO2 (0 [less-than-orequal] x [less-than-or-equal] 0.2): a high capacity cathode for sodium-ion batteries. Energy Environ Sci 7:1387 -1391.	Billaud J et al (2014b) Na0.67Mn1-xMgxO2 (0 [less-than-orequal] x [less-than-or-equal] 0.2): a high capacity cathode for sodium-ion batteries. Energy Environ Sci 7:1387 -1391. https://doi.org/10.1039/C4EE00465E	Billaud J et al (2014b) Na0.67Mn1-xMgxO2 (0 [less-than-orequal] x [less-than-or-equal] 0.2): a high capacity cathode for sodium-ion batteries. Energy Environ Sci 7:1387 -1391.
31	9	7	258	#/texts/234	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 269.1, 215.5, 37.34]	Bo S-H et al (2014) Structures of delithiated and degraded LiFeBO3, and their distinct changes upon electrochemical cycling. Inorg Chem 53:6585 -6595. https://doi.org/10.1021 /ic500169g	Bo S-H et al (2014) Structures of delithiated and degraded LiFeBO3, and their distinct changes upon electrochemical cycling. Inorg Chem 53:6585 -6595.	Bo S-H et al (2014) Structures of delithiated and degraded LiFeBO3, and their distinct changes upon electrochemical cycling. Inorg Chem 53:6585 -6595. https://doi.org/10.1021 /ic500169g	Bo S-H et al (2014) Structures of delithiated and degraded LiFeBO3, and their distinct changes upon electrochemical cycling. Inorg Chem 53:6585 -6595.
31	10	8	259	#/texts/235	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 309.79, 215.5, 47.37]	Boyadzhieva T, Koleva V, Zhecheva E, Nihtianova D, Mihaylov L, Stoyanova R (2015) Competitive lithium and sodium intercalation into sodium manganese phospho-olivine NaMnPO4 covered with carbon black. RSC Adv 5:87694 -87…	Boyadzhieva T, Koleva V, Zhecheva E, Nihtianova D, Mihaylov L, Stoyanova R (2015) Competitive lithium and sodium intercalation into sodium manganese phospho-olivine NaMnPO4 covered with carbon black. RSC Adv 5:87694 -87…	Boyadzhieva T, Koleva V, Zhecheva E, Nihtianova D, Mihaylov L, Stoyanova R (2015) Competitive lithium and sodium intercalation into sodium manganese phospho-olivine NaMnPO4 covered with carbon black. RSC Adv 5:87694 -87705. https://doi.org/10.1039/C5RA17299C	Boyadzhieva T, Koleva V, Zhecheva E, Nihtianova D, Mihaylov L, Stoyanova R (2015) Competitive lithium and sodium intercalation into sodium manganese phospho-olivine NaMnPO4 covered with carbon black. RSC Adv 5:87694 -87705.
31	11	9	260	#/texts/236	list_item	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 360.53, 215.52, 37.34]	Bridson JN, Quinlan SE, Tremaine PR (1998) Synthesis and crystal structure of maricite and sodium iron(III) hydroxyphosphate. Chem Mater 10:763 -768. https://doi. org/10.1021/cm9704847	Bridson JN, Quinlan SE, Tremaine PR (1998) Synthesis and crystal structure of maricite and sodium iron(III) hydroxyphosphate. Chem Mater 10:763 -768. org/10.1021/cm9704847	Bridson JN, Quinlan SE, Tremaine PR (1998) Synthesis and crystal structure of maricite and sodium iron(III) hydroxyphosphate. Chem Mater 10:763 -768. https://doi. org/10.1021/cm9704847	Bridson JN, Quinlan SE, Tremaine PR (1998) Synthesis and crystal structure of maricite and sodium iron(III) hydroxyphosphate. Chem Mater 10:763 -768. org/10.1021/cm9704847
31	12	10	261	#/texts/237	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 401.23, 215.52, 37.34]	Cao Y et al (2011) Reversible sodium ion insertion in single crystalline manganese oxide nanowires with long cycle life. Adv Mater 23:3155 -3160. https://doi.org/10.1002 /adma.201100904	Cao Y et al (2011) Reversible sodium ion insertion in single crystalline manganese oxide nanowires with long cycle life. Adv Mater 23:3155 -3160.	Cao Y et al (2011) Reversible sodium ion insertion in single crystalline manganese oxide nanowires with long cycle life. Adv Mater 23:3155 -3160. https://doi.org/10.1002 /adma.201100904	Cao Y et al (2011) Reversible sodium ion insertion in single crystalline manganese oxide nanowires with long cycle life. Adv Mater 23:3155 -3160.
31	13	11	262	#/texts/238	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 441.98, 215.5, 37.34]	Catti M, Montero-Campillo M (2011) First-principles modelling of lithium iron oxides as battery cathode materials. J Power Sources 196:3955 -3961. https://doi.org/10.1016/j. jpowsour.2010.11.062	Catti M, Montero-Campillo M (2011) First-principles modelling of lithium iron oxides as battery cathode materials. J Power Sources 196:3955 -3961.	Catti M, Montero-Campillo M (2011) First-principles modelling of lithium iron oxides as battery cathode materials. J Power Sources 196:3955 -3961. https://doi.org/10.1016/j. jpowsour.2010.11.062	Catti M, Montero-Campillo M (2011) First-principles modelling of lithium iron oxides as battery cathode materials. J Power Sources 196:3955 -3961.
31	14	12	263	#/texts/239	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 482.68, 215.45, 37.34]	Chen G, Shukla AK, Song X, Richardson TJ (2011) Improved kinetics and stabilities in Mg-substituted LiMnPO4. J Mater Chem 21:10126 -10133. https://doi.org/10.1039/C0 JM04230G	Chen G, Shukla AK, Song X, Richardson TJ (2011) Improved kinetics and stabilities in Mg-substituted LiMnPO4. J Mater Chem 21:10126 -10133.	Chen G, Shukla AK, Song X, Richardson TJ (2011) Improved kinetics and stabilities in Mg-substituted LiMnPO4. J Mater Chem 21:10126 -10133. https://doi.org/10.1039/C0 JM04230G	Chen G, Shukla AK, Song X, Richardson TJ (2011) Improved kinetics and stabilities in Mg-substituted LiMnPO4. J Mater Chem 21:10126 -10133.
31	15	13	264	#/texts/240	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 523.38, 215.46, 37.4]	Chen H, Hautier G, Ceder G (2012) Synthesis, computed stability, and crystal structure of a new family of inorganic compounds: carbonophosphates. J Am Chem Soc 134:19619 -19627. https://doi.org/10.1021/ja3040834	Chen H, Hautier G, Ceder G (2012) Synthesis, computed stability, and crystal structure of a new family of inorganic compounds: carbonophosphates. J Am Chem Soc 134:19619 -19627.	Chen H, Hautier G, Ceder G (2012) Synthesis, computed stability, and crystal structure of a new family of inorganic compounds: carbonophosphates. J Am Chem Soc 134:19619 -19627. https://doi.org/10.1021/ja3040834	Chen H, Hautier G, Ceder G (2012) Synthesis, computed stability, and crystal structure of a new family of inorganic compounds: carbonophosphates. J Am Chem Soc 134:19619 -19627.
31	16	14	265	#/texts/241	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.8, 564.14, 215.43, 27.46]	Chen H et al (2013) Sidorenkite (Na3MnPO4CO3): a new intercalation cathode material for Na-Ion batteries. Chem Mater 25:2777 -2786. https://doi.org/10.1021/cm400805q	Chen H et al (2013) Sidorenkite (Na3MnPO4CO3): a new intercalation cathode material for Na-Ion batteries. Chem Mater 25:2777 -2786.	Chen H et al (2013) Sidorenkite (Na3MnPO4CO3): a new intercalation cathode material for Na-Ion batteries. Chem Mater 25:2777 -2786. https://doi.org/10.1021/cm400805q	Chen H et al (2013) Sidorenkite (Na3MnPO4CO3): a new intercalation cathode material for Na-Ion batteries. Chem Mater 25:2777 -2786.
31	17	15	266	#/texts/242	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.81, 594.86, 215.4, 37.34]	Chen H, Dawson JA, Harding JH (2014) Effects of cationic substitution on structural defects in layered cathode materials LiNiO2. J Mater Chem A 2:7988 -7996. https://doi. org/10.1039/C4TA00637B	Chen H, Dawson JA, Harding JH (2014) Effects of cationic substitution on structural defects in layered cathode materials LiNiO2. J Mater Chem A 2:7988 -7996. org/10.1039/C4TA00637B	Chen H, Dawson JA, Harding JH (2014) Effects of cationic substitution on structural defects in layered cathode materials LiNiO2. J Mater Chem A 2:7988 -7996. https://doi. org/10.1039/C4TA00637B	Chen H, Dawson JA, Harding JH (2014) Effects of cationic substitution on structural defects in layered cathode materials LiNiO2. J Mater Chem A 2:7988 -7996. org/10.1039/C4TA00637B
31	18	16	267	#/texts/243	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p31:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.81, 635.56, 215.46, 27.36]	Chen Z, Cao L, Chen L, Zhou H, Zheng C, Xie K, Kuang Y (2015) Mesoporous LiFeBO3/C hollow spheres for improved stability lithium-ion battery cathodes. J Power	Chen Z, Cao L, Chen L, Zhou H, Zheng C, Xie K, Kuang Y (2015) Mesoporous LiFeBO3/C hollow spheres for improved stability lithium-ion battery cathodes. J Power	Chen Z, Cao L, Chen L, Zhou H, Zheng C, Xie K, Kuang Y (2015) Mesoporous LiFeBO3/C hollow spheres for improved stability lithium-ion battery cathodes. J Power	Chen Z, Cao L, Chen L, Zhou H, Zheng C, Xie K, Kuang Y (2015) Mesoporous LiFeBO3/C hollow spheres for improved stability lithium-ion battery cathodes. J Power
31	2	17	268	#/texts/227	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p31:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 46.28, 7.35]	Page 31 of 40	Page 31 of 40	Page 31 of 40	Page 31 of 40
31	3	18	269	#/texts/228	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p31:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[487.78, 34.25, 12.51, 7.44]	160	160	160	160
31	19	19	270	#/texts/244	list_item	page_margin_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p31:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[301.86, 53.83, 198.54, 18.86]	Sources 298:355 -362. https://doi.org/10.1016/j. jpowsour.2015.08.073	Sources 298:355 -362. jpowsour.2015.08.073	Sources 298:355 -362. https://doi.org/10.1016/j. jpowsour.2015.08.073	Sources 298:355 -362. jpowsour.2015.08.073
31	20	20	271	#/texts/245	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 76.33, 215.41, 37.5]	Chen R, Zhao T, Zhang X, Li L, Wu F (2016) Advanced cathode materials for lithium-ion batteries using nanoarchitectonics. Nanoscale Horiz 1:423 -444. https://doi.org/10.1039/C6 NH00016A	Chen R, Zhao T, Zhang X, Li L, Wu F (2016) Advanced cathode materials for lithium-ion batteries using nanoarchitectonics. Nanoscale Horiz 1:423 -444.	Chen R, Zhao T, Zhang X, Li L, Wu F (2016) Advanced cathode materials for lithium-ion batteries using nanoarchitectonics. Nanoscale Horiz 1:423 -444. https://doi.org/10.1039/C6 NH00016A	Chen R, Zhao T, Zhang X, Li L, Wu F (2016) Advanced cathode materials for lithium-ion batteries using nanoarchitectonics. Nanoscale Horiz 1:423 -444.
31	21	21	272	#/texts/246	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 117.47, 215.5, 37.34]	Cheng Q, He W, Zhang X, Li M, Wang L (2017) Modification of Li2MnSiO4 cathode materials for lithium-ion batteries: a review. J Mater Chem A 5:10772 -10797. https://doi. org/10.1039/C7TA00034K	Cheng Q, He W, Zhang X, Li M, Wang L (2017) Modification of Li2MnSiO4 cathode materials for lithium-ion batteries: a review. J Mater Chem A 5:10772 -10797. org/10.1039/C7TA00034K	Cheng Q, He W, Zhang X, Li M, Wang L (2017) Modification of Li2MnSiO4 cathode materials for lithium-ion batteries: a review. J Mater Chem A 5:10772 -10797. https://doi. org/10.1039/C7TA00034K	Cheng Q, He W, Zhang X, Li M, Wang L (2017) Modification of Li2MnSiO4 cathode materials for lithium-ion batteries: a review. J Mater Chem A 5:10772 -10797. org/10.1039/C7TA00034K
31	22	22	273	#/texts/247	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 158.46, 215.48, 27.46]	Chung SY, Bloking JT, Chiang YM (2002) Electronically conductive phospho-olivines as lithium storage electrodes. Nat Mater 1:123 -128. https://doi.org/10.1038/nmat732	Chung SY, Bloking JT, Chiang YM (2002) Electronically conductive phospho-olivines as lithium storage electrodes. Nat Mater 1:123 -128.	Chung SY, Bloking JT, Chiang YM (2002) Electronically conductive phospho-olivines as lithium storage electrodes. Nat Mater 1:123 -128. https://doi.org/10.1038/nmat732	Chung SY, Bloking JT, Chiang YM (2002) Electronically conductive phospho-olivines as lithium storage electrodes. Nat Mater 1:123 -128.
31	23	23	274	#/texts/248	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 189.47, 215.53, 37.44]	Clark JM, Barpanda P, Yamada A, Islam MS (2014) Sodium-ion battery cathodes Na2FeP2O7 and Na2MnP2O7: diffusion behaviour for high rate performance. J Mater Chem A 2: 11807 -11812. https://doi.org/10.1039/C4TA02383H	Clark JM, Barpanda P, Yamada A, Islam MS (2014) Sodium-ion battery cathodes Na2FeP2O7 and Na2MnP2O7: diffusion behaviour for high rate performance. J Mater Chem A 2: 11807 -11812.	Clark JM, Barpanda P, Yamada A, Islam MS (2014) Sodium-ion battery cathodes Na2FeP2O7 and Na2MnP2O7: diffusion behaviour for high rate performance. J Mater Chem A 2: 11807 -11812. https://doi.org/10.1039/C4TA02383H	Clark JM, Barpanda P, Yamada A, Islam MS (2014) Sodium-ion battery cathodes Na2FeP2O7 and Na2MnP2O7: diffusion behaviour for high rate performance. J Mater Chem A 2: 11807 -11812.
31	24	24	275	#/texts/249	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 228.92, 215.49, 38.93]	Clément RJ, Bruce PG, Grey CP (2015) Review -manganesebased P2-type transition metal oxides as sodium-ion battery cathode materials. J Electrochem Soc 162:A2589 -A2604. https://doi.org/10.1149/2.0201514jes	Clément RJ, Bruce PG, Grey CP (2015) Review -manganesebased P2-type transition metal oxides as sodium-ion battery cathode materials. J Electrochem Soc 162:A2589 -A2604.	Clément RJ, Bruce PG, Grey CP (2015) Review -manganesebased P2-type transition metal oxides as sodium-ion battery cathode materials. J Electrochem Soc 162:A2589 -A2604. https://doi.org/10.1149/2.0201514jes	Clément RJ, Bruce PG, Grey CP (2015) Review -manganesebased P2-type transition metal oxides as sodium-ion battery cathode materials. J Electrochem Soc 162:A2589 -A2604.
31	25	25	276	#/texts/250	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 271.5, 215.51, 57.35]	Clement RJ, Billaud J, Robert Armstrong A, Singh G, Rojo T, Bruce PG, Grey CP (2016) Structurally stable Mg-doped P2Na2/3Mn1-yMgyO2 sodium-ion battery cathodes with high rate performance: insights from electrochemical, …	Clement RJ, Billaud J, Robert Armstrong A, Singh G, Rojo T, Bruce PG, Grey CP (2016) Structurally stable Mg-doped P2Na2/3Mn1-yMgyO2 sodium-ion battery cathodes with high rate performance: insights from electrochemical, …	Clement RJ, Billaud J, Robert Armstrong A, Singh G, Rojo T, Bruce PG, Grey CP (2016) Structurally stable Mg-doped P2Na2/3Mn1-yMgyO2 sodium-ion battery cathodes with high rate performance: insights from electrochemical, NMR and diffraction studies. Energy Environ Sci 9:3240 -3251. https://doi.org/10.1039/C6EE01750A	Clement RJ, Billaud J, Robert Armstrong A, Singh G, Rojo T, Bruce PG, Grey CP (2016) Structurally stable Mg-doped P2Na2/3Mn1-yMgyO2 sodium-ion battery cathodes with high rate performance: insights from electrochemical, NMR and diffraction studies. Energy Environ Sci 9:3240 -3251.
31	26	26	277	#/texts/251	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 332.5, 215.47, 37.34]	Croguennec L, Deniard P, Brec R (1997a) Electrochemical cyclability of orthorhombic LiMnO2 : characterization of cycled materials. J Electrochem Soc 144:3323 -3330. https://doi.org/10.1149/1.1838013	Croguennec L, Deniard P, Brec R (1997a) Electrochemical cyclability of orthorhombic LiMnO2 : characterization of cycled materials. J Electrochem Soc 144:3323 -3330.	Croguennec L, Deniard P, Brec R (1997a) Electrochemical cyclability of orthorhombic LiMnO2 : characterization of cycled materials. J Electrochem Soc 144:3323 -3330. https://doi.org/10.1149/1.1838013	Croguennec L, Deniard P, Brec R (1997a) Electrochemical cyclability of orthorhombic LiMnO2 : characterization of cycled materials. J Electrochem Soc 144:3323 -3330.
31	27	27	278	#/texts/252	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 373.49, 215.52, 27.46]	Croguennec L, Deniard P, Brec R, Lecerf A (1997b) Nature of the stacking faults in orthorhombic LiMnO2. J Mater Chem 7: 511 -516. https://doi.org/10.1039/A604947H	Croguennec L, Deniard P, Brec R, Lecerf A (1997b) Nature of the stacking faults in orthorhombic LiMnO2. J Mater Chem 7: 511 -516.	Croguennec L, Deniard P, Brec R, Lecerf A (1997b) Nature of the stacking faults in orthorhombic LiMnO2. J Mater Chem 7: 511 -516. https://doi.org/10.1039/A604947H	Croguennec L, Deniard P, Brec R, Lecerf A (1997b) Nature of the stacking faults in orthorhombic LiMnO2. J Mater Chem 7: 511 -516.
31	28	28	279	#/texts/253	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 404.5, 215.52, 47.37]	Dai K, Mao J, Song X, Battaglia V, Liu G (2015) Na0.44MnO2 with very fast sodium diffusion and stable cycling synthesized via polyvinylpyrrolidone-combustion method. J Power Sources 285:161 -168. https://doi.org/10.1016…	Dai K, Mao J, Song X, Battaglia V, Liu G (2015) Na0.44MnO2 with very fast sodium diffusion and stable cycling synthesized via polyvinylpyrrolidone-combustion method. J Power Sources 285:161 -168.	Dai K, Mao J, Song X, Battaglia V, Liu G (2015) Na0.44MnO2 with very fast sodium diffusion and stable cycling synthesized via polyvinylpyrrolidone-combustion method. J Power Sources 285:161 -168. https://doi.org/10.1016/j. jpowsour.2015.03.087	Dai K, Mao J, Song X, Battaglia V, Liu G (2015) Na0.44MnO2 with very fast sodium diffusion and stable cycling synthesized via polyvinylpyrrolidone-combustion method. J Power Sources 285:161 -168.
31	29	29	280	#/texts/254	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 455.52, 215.49, 37.34]	Dai Z, Mani U, Tan HT, Yan Q (2017) Advanced Cathode Materials for Sodium-Ion Batteries: What Determines Our Choices? Small Methods 1:1700098. https://doi.org/10.1002 /smtd.201700098	Dai Z, Mani U, Tan HT, Yan Q (2017) Advanced Cathode Materials for Sodium-Ion Batteries: What Determines Our Choices? Small Methods 1:1700098.	Dai Z, Mani U, Tan HT, Yan Q (2017) Advanced Cathode Materials for Sodium-Ion Batteries: What Determines Our Choices? Small Methods 1:1700098. https://doi.org/10.1002 /smtd.201700098	Dai Z, Mani U, Tan HT, Yan Q (2017) Advanced Cathode Materials for Sodium-Ion Batteries: What Determines Our Choices? Small Methods 1:1700098.
31	30	30	281	#/texts/255	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 496.5, 215.51, 37.34]	Davidson IJ, McMillan RS, Murray JJ, Greedan JE (1995) Lithium-ion cell based on orthorhombic LiMnO2. J Power Sources 54:232 -235. https://doi.org/10.1016/0378-7753(94 )02074-D	Davidson IJ, McMillan RS, Murray JJ, Greedan JE (1995) Lithium-ion cell based on orthorhombic LiMnO2. J Power Sources 54:232 -235.	Davidson IJ, McMillan RS, Murray JJ, Greedan JE (1995) Lithium-ion cell based on orthorhombic LiMnO2. J Power Sources 54:232 -235. https://doi.org/10.1016/0378-7753(94 )02074-D	Davidson IJ, McMillan RS, Murray JJ, Greedan JE (1995) Lithium-ion cell based on orthorhombic LiMnO2. J Power Sources 54:232 -235.
31	31	31	282	#/texts/256	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 537.49, 215.47, 37.4]	de la Llave E et al (2016) Improving energy density and structural stability of manganese oxide cathodes for Na-Ion batteries by structural lithium substitution. Chem Mater 28:9064 -9076. https://doi.org/10.1021/acs.che…	de la Llave E et al (2016) Improving energy density and structural stability of manganese oxide cathodes for Na-Ion batteries by structural lithium substitution. Chem Mater 28:9064 -9076.	de la Llave E et al (2016) Improving energy density and structural stability of manganese oxide cathodes for Na-Ion batteries by structural lithium substitution. Chem Mater 28:9064 -9076. https://doi.org/10.1021/acs.chemmater.6b04078	de la Llave E et al (2016) Improving energy density and structural stability of manganese oxide cathodes for Na-Ion batteries by structural lithium substitution. Chem Mater 28:9064 -9076.
31	32	32	283	#/texts/257	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 578.53, 215.52, 37.44]	Delacourt C, Poizot P, Morcrette M, Tarascon JM, Masquelier C (2004) One-step low-temperature route for the preparation of electrochemically active LiMnPO4 powders. Chem Mater 16:93 -99. https://doi.org/10.1021/cm030347b	Delacourt C, Poizot P, Morcrette M, Tarascon JM, Masquelier C (2004) One-step low-temperature route for the preparation of electrochemically active LiMnPO4 powders. Chem Mater 16:93 -99.	Delacourt C, Poizot P, Morcrette M, Tarascon JM, Masquelier C (2004) One-step low-temperature route for the preparation of electrochemically active LiMnPO4 powders. Chem Mater 16:93 -99. https://doi.org/10.1021/cm030347b	Delacourt C, Poizot P, Morcrette M, Tarascon JM, Masquelier C (2004) One-step low-temperature route for the preparation of electrochemically active LiMnPO4 powders. Chem Mater 16:93 -99.
31	33	33	284	#/texts/258	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p31:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 619.52, 215.52, 37.34]	Delacourt C et al (2005) Toward understanding of electrical limitations (Electronic, Ionic) in LiMPO4 (M = Fe , Mn) electrode materials. J Electrochem Soc 152:A913 -A921. https://doi.org/10.1149/1.1884787	Delacourt C et al (2005) Toward understanding of electrical limitations (Electronic, Ionic) in LiMPO4 (M = Fe , Mn) electrode materials. J Electrochem Soc 152:A913 -A921.	Delacourt C et al (2005) Toward understanding of electrical limitations (Electronic, Ionic) in LiMPO4 (M = Fe , Mn) electrode materials. J Electrochem Soc 152:A913 -A921. https://doi.org/10.1149/1.1884787	Delacourt C et al (2005) Toward understanding of electrical limitations (Electronic, Ionic) in LiMPO4 (M = Fe , Mn) electrode materials. J Electrochem Soc 152:A913 -A921.
32	1	1	285	#/texts/259	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_1_of_2	1	2	p32:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
32	2	2	286	#/texts/260	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_1_of_2	1	2	p32:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 32 of 40	Page 32 of 40	Page 32 of 40	Page 32 of 40
32	4	3	287	#/texts/262	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 55.45, 215.49, 27.46]	Delmas C, Fouassier C, Hagenmuller P (1980) Structural classification and properties of the layered oxides. Physica B+C 99: 81 -85. https://doi.org/10.1016/0378-4363(80)90214-4	Delmas C, Fouassier C, Hagenmuller P (1980) Structural classification and properties of the layered oxides. Physica B+C 99: 81 -85.	Delmas C, Fouassier C, Hagenmuller P (1980) Structural classification and properties of the layered oxides. Physica B+C 99: 81 -85. https://doi.org/10.1016/0378-4363(80)90214-4	Delmas C, Fouassier C, Hagenmuller P (1980) Structural classification and properties of the layered oxides. Physica B+C 99: 81 -85.
32	5	4	288	#/texts/263	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 86.18, 215.41, 37.34]	Ding Z et al (2016) Three-dimensionally ordered macroporous Li2FeSiO4/C composite as a high performance cathode for advanced lithium ion batteries. J Power Sources 329:297 -304. https://doi.org/10.1016/j.jpowsour.2016.0…	Ding Z et al (2016) Three-dimensionally ordered macroporous Li2FeSiO4/C composite as a high performance cathode for advanced lithium ion batteries. J Power Sources 329:297 -304.	Ding Z et al (2016) Three-dimensionally ordered macroporous Li2FeSiO4/C composite as a high performance cathode for advanced lithium ion batteries. J Power Sources 329:297 -304. https://doi.org/10.1016/j.jpowsour.2016.08.091	Ding Z et al (2016) Three-dimensionally ordered macroporous Li2FeSiO4/C composite as a high performance cathode for advanced lithium ion batteries. J Power Sources 329:297 -304.
32	6	5	289	#/texts/264	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 126.87, 215.5, 27.36]	Dominko R (2008) Li2MSiO4 (M=Fe and/or Mn) cathode materials. J Power Sources 184:462 -468. https://doi.org/10.1016 /j.jpowsour.2008.02.089	Dominko R (2008) Li2MSiO4 (M=Fe and/or Mn) cathode materials. J Power Sources 184:462 -468.	Dominko R (2008) Li2MSiO4 (M=Fe and/or Mn) cathode materials. J Power Sources 184:462 -468. https://doi.org/10.1016 /j.jpowsour.2008.02.089	Dominko R (2008) Li2MSiO4 (M=Fe and/or Mn) cathode materials. J Power Sources 184:462 -468.
32	7	6	290	#/texts/265	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 157.6, 215.51, 37.4]	Dong XX, Huang CY, Jin Q, Zhou J, Feng P, Shi FY , Zhang DY (2017) Enhancing the rate performance of spherical LiFeBO3/C via Cr doping. RSC Adv 7:33745 -33750. https://doi.org/10.1039/C7RA03028B	Dong XX, Huang CY, Jin Q, Zhou J, Feng P, Shi FY , Zhang DY (2017) Enhancing the rate performance of spherical LiFeBO3/C via Cr doping. RSC Adv 7:33745 -33750.	Dong XX, Huang CY, Jin Q, Zhou J, Feng P, Shi FY , Zhang DY (2017) Enhancing the rate performance of spherical LiFeBO3/C via Cr doping. RSC Adv 7:33745 -33750. https://doi.org/10.1039/C7RA03028B	Dong XX, Huang CY, Jin Q, Zhou J, Feng P, Shi FY , Zhang DY (2017) Enhancing the rate performance of spherical LiFeBO3/C via Cr doping. RSC Adv 7:33745 -33750.
32	8	7	291	#/texts/266	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 198.35, 215.54, 47.37]	Dwibedi D, Araujo RB, Chakraborty S, Shanbogh PP, Sundaram NG, Ahuja R, Barpanda P (2015) Na2.44Mn1.79(SO4)3: a new member of the alluaudite family of insertion compounds for sodium ion batteries. J Mater Chem A 3:18564…	Dwibedi D, Araujo RB, Chakraborty S, Shanbogh PP, Sundaram NG, Ahuja R, Barpanda P (2015) Na2.44Mn1.79(SO4)3: a new member of the alluaudite family of insertion compounds for sodium ion batteries. J Mater Chem A 3:18564…	Dwibedi D, Araujo RB, Chakraborty S, Shanbogh PP, Sundaram NG, Ahuja R, Barpanda P (2015) Na2.44Mn1.79(SO4)3: a new member of the alluaudite family of insertion compounds for sodium ion batteries. J Mater Chem A 3:18564 -18571. https://doi.org/10.1039/C5TA04527D	Dwibedi D, Araujo RB, Chakraborty S, Shanbogh PP, Sundaram NG, Ahuja R, Barpanda P (2015) Na2.44Mn1.79(SO4)3: a new member of the alluaudite family of insertion compounds for sodium ion batteries. J Mater Chem A 3:18564 -18571.
32	9	8	292	#/texts/267	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 249.09, 215.52, 57.35]	Ein-Eli Y, Howard WF, Lu SH, Mukerjee S, McBreen J, Vaughey JT, Thackeray MM (1998) LiMn2 -x Cu x O 4 Spinels (0.1 ⩽ x ⩽ 0.5): a new class of 5 V cathode materials for Li batteries: I. Electrochemical, Structural, and S…	Ein-Eli Y, Howard WF, Lu SH, Mukerjee S, McBreen J, Vaughey JT, Thackeray MM (1998) LiMn2 -x Cu x O 4 Spinels (0.1 ⩽ x ⩽ 0.5): a new class of 5 V cathode materials for Li batteries: I. Electrochemical, Structural, and S…	Ein-Eli Y, Howard WF, Lu SH, Mukerjee S, McBreen J, Vaughey JT, Thackeray MM (1998) LiMn2 -x Cu x O 4 Spinels (0.1 ⩽ x ⩽ 0.5): a new class of 5 V cathode materials for Li batteries: I. Electrochemical, Structural, and Spectroscopic Studies. J Electrochem Soc 145:1238 -1244. https://doi. org/10.1149/1.1838445	Ein-Eli Y, Howard WF, Lu SH, Mukerjee S, McBreen J, Vaughey JT, Thackeray MM (1998) LiMn2 -x Cu x O 4 Spinels (0.1 ⩽ x ⩽ 0.5): a new class of 5 V cathode materials for Li batteries: I. Electrochemical, Structural, and Spectroscopic Studies. J Electrochem Soc 145:1238 -1244. org/10.1149/1.1838445
32	10	9	293	#/texts/268	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 309.79, 215.52, 47.37]	Ellis BL, Makahnouk WRM, Makimura Y, Toghill K, Nazar LF (2007) A multifunctional 3.5 V iron-based phosphate cathode for rechargeable batteries. Nat Mater 6:749 -753 http://www. nature.com/nmat/journal/v6/n10/suppinfo/n…	Ellis BL, Makahnouk WRM, Makimura Y, Toghill K, Nazar LF (2007) A multifunctional 3.5 V iron-based phosphate cathode for rechargeable batteries. Nat Mater 6:749 -753 nature.com/nmat/journal/v6/n10/suppinfo/nmat2007_S1. …	Ellis BL, Makahnouk WRM, Makimura Y, Toghill K, Nazar LF (2007) A multifunctional 3.5 V iron-based phosphate cathode for rechargeable batteries. Nat Mater 6:749 -753 http://www. nature.com/nmat/journal/v6/n10/suppinfo/nmat2007_S1. html	Ellis BL, Makahnouk WRM, Makimura Y, Toghill K, Nazar LF (2007) A multifunctional 3.5 V iron-based phosphate cathode for rechargeable batteries. Nat Mater 6:749 -753 nature.com/nmat/journal/v6/n10/suppinfo/nmat2007_S1. html
32	11	10	294	#/texts/269	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 359.0, 215.43, 38.97]	Erickson EM et al (2017) Review -recent advances and remaining challenges for lithium Ion battery cathodes: II. lithiumrich, xLi2MnO3·(1-x)LiNiaCobMncO2. J Electrochem Soc 164:A6341 -A6348. https://doi.org/10.1149/2.046…	Erickson EM et al (2017) Review -recent advances and remaining challenges for lithium Ion battery cathodes: II. lithiumrich, xLi2MnO3·(1-x)LiNiaCobMncO2. J Electrochem Soc 164:A6341 -A6348.	Erickson EM et al (2017) Review -recent advances and remaining challenges for lithium Ion battery cathodes: II. lithiumrich, xLi2MnO3·(1-x)LiNiaCobMncO2. J Electrochem Soc 164:A6341 -A6348. https://doi.org/10.1149/2.0461701jes	Erickson EM et al (2017) Review -recent advances and remaining challenges for lithium Ion battery cathodes: II. lithiumrich, xLi2MnO3·(1-x)LiNiaCobMncO2. J Electrochem Soc 164:A6341 -A6348.
32	12	11	295	#/texts/270	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 401.23, 215.53, 37.34]	Fang Y, Xiao L, Qian J, Ai X, Yang H, Cao Y (2014) Mesoporous amorphous FePO4 nanospheres as high-performance cathode material for sodium-ion batteries. Nano Lett 14:3539 -3543. https://doi.org/10.1021/nl501152f	Fang Y, Xiao L, Qian J, Ai X, Yang H, Cao Y (2014) Mesoporous amorphous FePO4 nanospheres as high-performance cathode material for sodium-ion batteries. Nano Lett 14:3539 -3543.	Fang Y, Xiao L, Qian J, Ai X, Yang H, Cao Y (2014) Mesoporous amorphous FePO4 nanospheres as high-performance cathode material for sodium-ion batteries. Nano Lett 14:3539 -3543. https://doi.org/10.1021/nl501152f	Fang Y, Xiao L, Qian J, Ai X, Yang H, Cao Y (2014) Mesoporous amorphous FePO4 nanospheres as high-performance cathode material for sodium-ion batteries. Nano Lett 14:3539 -3543.
32	13	12	296	#/texts/271	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 441.98, 215.52, 47.31]	Fang Y, Liu Q, Xiao L, Ai X, Yang H, Cao Y (2015) Highperformance olivine NaFePO4 microsphere cathode synthesized by aqueous electrochemical displacement method for sodium ion batteries. ACS Appl Mater Interfaces 7:1797…	Fang Y, Liu Q, Xiao L, Ai X, Yang H, Cao Y (2015) Highperformance olivine NaFePO4 microsphere cathode synthesized by aqueous electrochemical displacement method for sodium ion batteries. ACS Appl Mater Interfaces 7:1797…	Fang Y, Liu Q, Xiao L, Ai X, Yang H, Cao Y (2015) Highperformance olivine NaFePO4 microsphere cathode synthesized by aqueous electrochemical displacement method for sodium ion batteries. ACS Appl Mater Interfaces 7:17977 -17984. https://doi.org/10.1021/acsami.5b04691	Fang Y, Liu Q, Xiao L, Ai X, Yang H, Cao Y (2015) Highperformance olivine NaFePO4 microsphere cathode synthesized by aqueous electrochemical displacement method for sodium ion batteries. ACS Appl Mater Interfaces 7:17977 -17984.
32	14	13	297	#/texts/272	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 492.66, 215.45, 37.4]	Fisher CAJ, Kuganathan N, Islam MS (2013) Defect chemistry and lithium-ion migration in polymorphs of the cathode material Li2MnSiO4. J Mater Chem A 1:4207 -4214. https://doi.org/10.1039/C3TA00111C	Fisher CAJ, Kuganathan N, Islam MS (2013) Defect chemistry and lithium-ion migration in polymorphs of the cathode material Li2MnSiO4. J Mater Chem A 1:4207 -4214.	Fisher CAJ, Kuganathan N, Islam MS (2013) Defect chemistry and lithium-ion migration in polymorphs of the cathode material Li2MnSiO4. J Mater Chem A 1:4207 -4214. https://doi.org/10.1039/C3TA00111C	Fisher CAJ, Kuganathan N, Islam MS (2013) Defect chemistry and lithium-ion migration in polymorphs of the cathode material Li2MnSiO4. J Mater Chem A 1:4207 -4214.
32	15	14	298	#/texts/273	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 533.41, 215.41, 27.36]	Fuchs B, Kemmler-Sack S (1994) Synthesis of LiMnO2 and LiFeO2 in molten Li halides. Solid State Ionics 68:279 -285. https://doi.org/10.1016/0167-2738(94)90186-4	Fuchs B, Kemmler-Sack S (1994) Synthesis of LiMnO2 and LiFeO2 in molten Li halides. Solid State Ionics 68:279 -285.	Fuchs B, Kemmler-Sack S (1994) Synthesis of LiMnO2 and LiFeO2 in molten Li halides. Solid State Ionics 68:279 -285. https://doi.org/10.1016/0167-2738(94)90186-4	Fuchs B, Kemmler-Sack S (1994) Synthesis of LiMnO2 and LiFeO2 in molten Li halides. Solid State Ionics 68:279 -285.
32	16	15	299	#/texts/274	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 564.14, 215.43, 37.44]	Furuta N, Nishimura S-i, Barpanda P, Yamada A (2012) Fe3+/ Fe2+ redox couple approaching 4 V in Li2 -x(Fe1 -yMny)P2O7 pyrophosphate cathodes. Chem Mater 24: 1055 -1061. https://doi.org/10.1021/cm2032465	Furuta N, Nishimura S-i, Barpanda P, Yamada A (2012) Fe3+/ Fe2+ redox couple approaching 4 V in Li2 -x(Fe1 -yMny)P2O7 pyrophosphate cathodes. Chem Mater 24: 1055 -1061.	Furuta N, Nishimura S-i, Barpanda P, Yamada A (2012) Fe3+/ Fe2+ redox couple approaching 4 V in Li2 -x(Fe1 -yMny)P2O7 pyrophosphate cathodes. Chem Mater 24: 1055 -1061. https://doi.org/10.1021/cm2032465	Furuta N, Nishimura S-i, Barpanda P, Yamada A (2012) Fe3+/ Fe2+ redox couple approaching 4 V in Li2 -x(Fe1 -yMny)P2O7 pyrophosphate cathodes. Chem Mater 24: 1055 -1061.
32	17	16	300	#/texts/275	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.8, 604.84, 215.49, 37.34]	Gent WE et al (2017) Coupling between oxygen redox and cation migration explains unusual electrochemistry in lithium-rich layered oxides. Nat Commun 8:2091. https://doi.org/10.1038 /s41467-017-02041-x	Gent WE et al (2017) Coupling between oxygen redox and cation migration explains unusual electrochemistry in lithium-rich layered oxides. Nat Commun 8:2091.	Gent WE et al (2017) Coupling between oxygen redox and cation migration explains unusual electrochemistry in lithium-rich layered oxides. Nat Commun 8:2091. https://doi.org/10.1038 /s41467-017-02041-x	Gent WE et al (2017) Coupling between oxygen redox and cation migration explains unusual electrochemistry in lithium-rich layered oxides. Nat Commun 8:2091.
32	18	17	301	#/texts/276	list_item	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p32:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.8, 645.59, 215.44, 17.33]	Gong Z, Yang Y (2011) Recent advances in the research of polyanion-type cathode materials for Li-ion batteries.	Gong Z, Yang Y (2011) Recent advances in the research of polyanion-type cathode materials for Li-ion batteries.	Gong Z, Yang Y (2011) Recent advances in the research of polyanion-type cathode materials for Li-ion batteries.	Gong Z, Yang Y (2011) Recent advances in the research of polyanion-type cathode materials for Li-ion batteries.
32	3	18	302	#/texts/261	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p32:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
32	19	19	303	#/texts/277	list_item	page_margin_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p32:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[301.83, 53.92, 198.46, 18.86]	Energy Environ Sci 4:3223 -3242. https://doi.org/10.1039 /C0EE00713G	Energy Environ Sci 4:3223 -3242. /C0EE00713G	Energy Environ Sci 4:3223 -3242. https://doi.org/10.1039 /C0EE00713G	Energy Environ Sci 4:3223 -3242. /C0EE00713G
32	20	20	304	#/texts/278	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 75.46, 215.52, 47.37]	Gonzalo E, Han MH, Lopez del Amo JM, Acebedo B, CasasCabanas M, Rojo T (2014) Synthesis and characterization of pure P2- and O3-Na2/3Fe2/3Mn1/3O2 as cathode materials for Na ion batteries. J Mater Chem A 2:18523 -18530.…	Gonzalo E, Han MH, Lopez del Amo JM, Acebedo B, CasasCabanas M, Rojo T (2014) Synthesis and characterization of pure P2- and O3-Na2/3Fe2/3Mn1/3O2 as cathode materials for Na ion batteries. J Mater Chem A 2:18523 -18530.	Gonzalo E, Han MH, Lopez del Amo JM, Acebedo B, CasasCabanas M, Rojo T (2014) Synthesis and characterization of pure P2- and O3-Na2/3Fe2/3Mn1/3O2 as cathode materials for Na ion batteries. J Mater Chem A 2:18523 -18530. https://doi.org/10.1039/C4TA03991B	Gonzalo E, Han MH, Lopez del Amo JM, Acebedo B, CasasCabanas M, Rojo T (2014) Synthesis and characterization of pure P2- and O3-Na2/3Fe2/3Mn1/3O2 as cathode materials for Na ion batteries. J Mater Chem A 2:18523 -18530.
32	21	21	305	#/texts/279	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 125.46, 215.54, 27.46]	Gu M et al (2013) Formation of the spinel phase in the layered composite cathode used in Li-Ion batteries. ACS Nano 7: 760 -767. https://doi.org/10.1021/nn305065u	Gu M et al (2013) Formation of the spinel phase in the layered composite cathode used in Li-Ion batteries. ACS Nano 7: 760 -767.	Gu M et al (2013) Formation of the spinel phase in the layered composite cathode used in Li-Ion batteries. ACS Nano 7: 760 -767. https://doi.org/10.1021/nn305065u	Gu M et al (2013) Formation of the spinel phase in the layered composite cathode used in Li-Ion batteries. ACS Nano 7: 760 -767.
32	22	22	306	#/texts/280	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 155.5, 215.51, 37.34]	Gummow RJ, Dekock A, Thackeray MM (1994) Improved capacity retention in rechargeable 4v lithium lithium manganese oxide (spinel) cells. Solid State Ionics 69:59 -67. https://doi.org/10.1016/0167-2738(94)90450-2	Gummow RJ, Dekock A, Thackeray MM (1994) Improved capacity retention in rechargeable 4v lithium lithium manganese oxide (spinel) cells. Solid State Ionics 69:59 -67.	Gummow RJ, Dekock A, Thackeray MM (1994) Improved capacity retention in rechargeable 4v lithium lithium manganese oxide (spinel) cells. Solid State Ionics 69:59 -67. https://doi.org/10.1016/0167-2738(94)90450-2	Gummow RJ, Dekock A, Thackeray MM (1994) Improved capacity retention in rechargeable 4v lithium lithium manganese oxide (spinel) cells. Solid State Ionics 69:59 -67.
32	23	23	307	#/texts/281	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 195.46, 215.49, 47.37]	Guo H, Wu C, Xie J, Zhang S, Cao G, Zhao X (2014a) Controllable synthesis of high-performance LiMnPO4 nanocrystals by a facile one-spot solvothermal process. J Mater Chem A 2:10581 -10588. https://doi.org/10.1039/C4 TA0…	Guo H, Wu C, Xie J, Zhang S, Cao G, Zhao X (2014a) Controllable synthesis of high-performance LiMnPO4 nanocrystals by a facile one-spot solvothermal process. J Mater Chem A 2:10581 -10588.	Guo H, Wu C, Xie J, Zhang S, Cao G, Zhao X (2014a) Controllable synthesis of high-performance LiMnPO4 nanocrystals by a facile one-spot solvothermal process. J Mater Chem A 2:10581 -10588. https://doi.org/10.1039/C4 TA01365D	Guo H, Wu C, Xie J, Zhang S, Cao G, Zhao X (2014a) Controllable synthesis of high-performance LiMnPO4 nanocrystals by a facile one-spot solvothermal process. J Mater Chem A 2:10581 -10588.
32	24	24	308	#/texts/282	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 245.52, 215.52, 37.34]	Guo S et al (2014b) A high-capacity, low-cost layered sodium manganese oxide material as cathode for sodium-ion batteries. ChemSusChem 7:2115 -2119. https://doi.org/10.1002 /cssc.201402138	Guo S et al (2014b) A high-capacity, low-cost layered sodium manganese oxide material as cathode for sodium-ion batteries. ChemSusChem 7:2115 -2119.	Guo S et al (2014b) A high-capacity, low-cost layered sodium manganese oxide material as cathode for sodium-ion batteries. ChemSusChem 7:2115 -2119. https://doi.org/10.1002 /cssc.201402138	Guo S et al (2014b) A high-capacity, low-cost layered sodium manganese oxide material as cathode for sodium-ion batteries. ChemSusChem 7:2115 -2119.
32	25	25	309	#/texts/283	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 285.48, 215.49, 37.4]	Han MH, Gonzalo E, Casas-Cabanas M, Rojo T (2014) Structural evolution and electrochemistry of monoclinic NaNiO2 upon the first cycling process. J Power Sources 258:266 -271. https://doi.org/10.1016/j.jpowsour.2014.02.0…	Han MH, Gonzalo E, Casas-Cabanas M, Rojo T (2014) Structural evolution and electrochemistry of monoclinic NaNiO2 upon the first cycling process. J Power Sources 258:266 -271.	Han MH, Gonzalo E, Casas-Cabanas M, Rojo T (2014) Structural evolution and electrochemistry of monoclinic NaNiO2 upon the first cycling process. J Power Sources 258:266 -271. https://doi.org/10.1016/j.jpowsour.2014.02.048	Han MH, Gonzalo E, Casas-Cabanas M, Rojo T (2014) Structural evolution and electrochemistry of monoclinic NaNiO2 upon the first cycling process. J Power Sources 258:266 -271.
32	26	26	310	#/texts/284	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 325.5, 215.51, 47.37]	Han MH, Acebedo B, Gonzalo E, Fontecoba PS, Clarke S, Saurel D, Rojo T (2015) Synthesis and Electrochemistry Study of P2- and O3-phase Na2/3Fe1/2Mn1/2O2. Electrochim Acta 182:1029 -1036. h t t p s : / / d o i . o r g / …	Han MH, Acebedo B, Gonzalo E, Fontecoba PS, Clarke S, Saurel D, Rojo T (2015) Synthesis and Electrochemistry Study of P2- and O3-phase Na2/3Fe1/2Mn1/2O2. Electrochim Acta 182:1029 -1036. h t t p s : / / d o i . o r g / …	Han MH, Acebedo B, Gonzalo E, Fontecoba PS, Clarke S, Saurel D, Rojo T (2015) Synthesis and Electrochemistry Study of P2- and O3-phase Na2/3Fe1/2Mn1/2O2. Electrochim Acta 182:1029 -1036. h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . electacta.2015.10.003	Han MH, Acebedo B, Gonzalo E, Fontecoba PS, Clarke S, Saurel D, Rojo T (2015) Synthesis and Electrochemistry Study of P2- and O3-phase Na2/3Fe1/2Mn1/2O2. Electrochim Acta 182:1029 -1036. h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . electacta.2015.10.003
32	27	27	311	#/texts/285	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 375.5, 215.52, 37.4]	Hasa I, Buchholz D, Passerini S, Scrosati B, Hassoun J (2014) High Performance Na0.5[Ni0.23Fe0.13Mn0.63]O2 Cathode for Sodium-Ion Batteries. Adv Energy Mater 4:1400083. https://doi.org/10.1002/aenm.201400083	Hasa I, Buchholz D, Passerini S, Scrosati B, Hassoun J (2014) High Performance Na0.5[Ni0.23Fe0.13Mn0.63]O2 Cathode for Sodium-Ion Batteries. Adv Energy Mater 4:1400083.	Hasa I, Buchholz D, Passerini S, Scrosati B, Hassoun J (2014) High Performance Na0.5[Ni0.23Fe0.13Mn0.63]O2 Cathode for Sodium-Ion Batteries. Adv Energy Mater 4:1400083. https://doi.org/10.1002/aenm.201400083	Hasa I, Buchholz D, Passerini S, Scrosati B, Hassoun J (2014) High Performance Na0.5[Ni0.23Fe0.13Mn0.63]O2 Cathode for Sodium-Ion Batteries. Adv Energy Mater 4:1400083.
32	28	28	312	#/texts/286	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 415.52, 215.44, 47.37]	Hassanzadeh N, Sadrnezhaad SK, Chen G (2016a) Ball mill assisted synthesis of Na3MnCO3PO4 nanoparticles anchored on reduced graphene oxide for sodium ion battery cathodes. Electrochim Acta 220:683 -689. https://doi. org…	Hassanzadeh N, Sadrnezhaad SK, Chen G (2016a) Ball mill assisted synthesis of Na3MnCO3PO4 nanoparticles anchored on reduced graphene oxide for sodium ion battery cathodes. Electrochim Acta 220:683 -689. org/10.1016/j.el…	Hassanzadeh N, Sadrnezhaad SK, Chen G (2016a) Ball mill assisted synthesis of Na3MnCO3PO4 nanoparticles anchored on reduced graphene oxide for sodium ion battery cathodes. Electrochim Acta 220:683 -689. https://doi. org/10.1016/j.electacta.2016.10.160	Hassanzadeh N, Sadrnezhaad SK, Chen G (2016a) Ball mill assisted synthesis of Na3MnCO3PO4 nanoparticles anchored on reduced graphene oxide for sodium ion battery cathodes. Electrochim Acta 220:683 -689. org/10.1016/j.electacta.2016.10.160
32	29	29	313	#/texts/287	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 465.57, 215.53, 37.34]	Hassanzadeh N, Sadrnezhaad SK, Chen G (2016b) In-situ hydrothermal synthesis of Na3MnCO3PO4/rGO hybrid as a cathode for Na-ion battery. Electrochim Acta 208:188 -194. https://doi.org/10.1016/j.electacta.2016.05.028	Hassanzadeh N, Sadrnezhaad SK, Chen G (2016b) In-situ hydrothermal synthesis of Na3MnCO3PO4/rGO hybrid as a cathode for Na-ion battery. Electrochim Acta 208:188 -194.	Hassanzadeh N, Sadrnezhaad SK, Chen G (2016b) In-situ hydrothermal synthesis of Na3MnCO3PO4/rGO hybrid as a cathode for Na-ion battery. Electrochim Acta 208:188 -194. https://doi.org/10.1016/j.electacta.2016.05.028	Hassanzadeh N, Sadrnezhaad SK, Chen G (2016b) In-situ hydrothermal synthesis of Na3MnCO3PO4/rGO hybrid as a cathode for Na-ion battery. Electrochim Acta 208:188 -194.
32	30	30	314	#/texts/288	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 505.54, 215.54, 47.37]	Hautier G, Jain A, Chen H, Moore C, Ong SP, Ceder G (2011) Novel mixed polyanions lithium-ion battery cathode materials predicted by high-throughput ab initio computations. J Mater Chem 21:17147 -17153. https://doi.org/…	Hautier G, Jain A, Chen H, Moore C, Ong SP, Ceder G (2011) Novel mixed polyanions lithium-ion battery cathode materials predicted by high-throughput ab initio computations. J Mater Chem 21:17147 -17153.	Hautier G, Jain A, Chen H, Moore C, Ong SP, Ceder G (2011) Novel mixed polyanions lithium-ion battery cathode materials predicted by high-throughput ab initio computations. J Mater Chem 21:17147 -17153. https://doi.org/10.1039/C1 JM12216A	Hautier G, Jain A, Chen H, Moore C, Ong SP, Ceder G (2011) Novel mixed polyanions lithium-ion battery cathode materials predicted by high-throughput ab initio computations. J Mater Chem 21:17147 -17153.
32	31	31	315	#/texts/289	list_item	affiliation	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 555.59, 215.53, 37.34]	He G, Manthiram A (2014) Nanostructured Li2MnSiO4/C cathodes with hierarchical macro-/mesoporosity for lithium-ion batteries. Adv Funct Mater 24:5277 -5283. https://doi. org/10.1002/adfm.201400610	He G, Manthiram A (2014) Nanostructured Li2MnSiO4/C cathodes with hierarchical macro-/mesoporosity for lithium-ion batteries. Adv Funct Mater 24:5277 -5283. org/10.1002/adfm.201400610	He G, Manthiram A (2014) Nanostructured Li2MnSiO4/C cathodes with hierarchical macro-/mesoporosity for lithium-ion batteries. Adv Funct Mater 24:5277 -5283. https://doi. org/10.1002/adfm.201400610	He G, Manthiram A (2014) Nanostructured Li2MnSiO4/C cathodes with hierarchical macro-/mesoporosity for lithium-ion batteries. Adv Funct Mater 24:5277 -5283. org/10.1002/adfm.201400610
32	32	32	316	#/texts/290	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 595.55, 215.46, 37.4]	He Y, Li R, Ding X, Jiang L, Wei M (2010) Hydrothermal synthesis and electrochemical properties of orthorhombic LiMnO2 nanoplates. J Alloys Compd 492:601 -604. https://doi.org/10.1016/j.jallcom.2009.11.191	He Y, Li R, Ding X, Jiang L, Wei M (2010) Hydrothermal synthesis and electrochemical properties of orthorhombic LiMnO2 nanoplates. J Alloys Compd 492:601 -604.	He Y, Li R, Ding X, Jiang L, Wei M (2010) Hydrothermal synthesis and electrochemical properties of orthorhombic LiMnO2 nanoplates. J Alloys Compd 492:601 -604. https://doi.org/10.1016/j.jallcom.2009.11.191	He Y, Li R, Ding X, Jiang L, Wei M (2010) Hydrothermal synthesis and electrochemical properties of orthorhombic LiMnO2 nanoplates. J Alloys Compd 492:601 -604.
32	33	33	317	#/texts/291	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p32:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 635.57, 215.44, 27.46]	He X et al (2016) Durable high-rate capability Na0.44MnO2 cathode material for sodium-ion batteries. Nano Energy 27: 602 -610. https://doi.org/10.1016/j.nanoen.2016.07.021	He X et al (2016) Durable high-rate capability Na0.44MnO2 cathode material for sodium-ion batteries. Nano Energy 27: 602 -610.	He X et al (2016) Durable high-rate capability Na0.44MnO2 cathode material for sodium-ion batteries. Nano Energy 27: 602 -610. https://doi.org/10.1016/j.nanoen.2016.07.021	He X et al (2016) Durable high-rate capability Na0.44MnO2 cathode material for sodium-ion batteries. Nano Energy 27: 602 -610.
33	1	1	318	#/texts/292	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_1_of_2	1	2	p33:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
33	3	2	319	#/texts/294	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 55.45, 215.47, 37.34]	Hirayama M, Tomita H, Kubota K, Kanno R (2011) Structure and electrode reactions of layered rocksalt LiFeO2 nanoparticles for lithium battery cathode. J Power Sources 196:6809 -6814. https://doi.org/10.1016/j.jpowsour.2…	Hirayama M, Tomita H, Kubota K, Kanno R (2011) Structure and electrode reactions of layered rocksalt LiFeO2 nanoparticles for lithium battery cathode. J Power Sources 196:6809 -6814.	Hirayama M, Tomita H, Kubota K, Kanno R (2011) Structure and electrode reactions of layered rocksalt LiFeO2 nanoparticles for lithium battery cathode. J Power Sources 196:6809 -6814. https://doi.org/10.1016/j.jpowsour.2010.10.009	Hirayama M, Tomita H, Kubota K, Kanno R (2011) Structure and electrode reactions of layered rocksalt LiFeO2 nanoparticles for lithium battery cathode. J Power Sources 196:6809 -6814.
33	4	3	320	#/texts/295	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 96.15, 215.46, 37.5]	Hong Y, Tang Z, Wang S, Quan W, Zhang Z (2015) Highperformance LiMnPO4 nanorods synthesized via a facile EG-assisted solvothermal approach. J Mater Chem A 3: 10267 -10274. https://doi.org/10.1039/C5TA01218J	Hong Y, Tang Z, Wang S, Quan W, Zhang Z (2015) Highperformance LiMnPO4 nanorods synthesized via a facile EG-assisted solvothermal approach. J Mater Chem A 3: 10267 -10274.	Hong Y, Tang Z, Wang S, Quan W, Zhang Z (2015) Highperformance LiMnPO4 nanorods synthesized via a facile EG-assisted solvothermal approach. J Mater Chem A 3: 10267 -10274. https://doi.org/10.1039/C5TA01218J	Hong Y, Tang Z, Wang S, Quan W, Zhang Z (2015) Highperformance LiMnPO4 nanorods synthesized via a facile EG-assisted solvothermal approach. J Mater Chem A 3: 10267 -10274.
33	5	4	321	#/texts/296	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 135.02, 215.45, 39.23]	Hu J et al (2017) Tuning Li-Ion diffusion in α -LiMn1 -xFexPO4 nanocrystals by antisite defects and embedded β -phase for advanced Li-Ion batteries. Nano Lett 17:4934 -4940. https://doi.org/10.1021/acs.nanolett.7b01978	Hu J et al (2017) Tuning Li-Ion diffusion in α -LiMn1 -xFexPO4 nanocrystals by antisite defects and embedded β -phase for advanced Li-Ion batteries. Nano Lett 17:4934 -4940.	Hu J et al (2017) Tuning Li-Ion diffusion in α -LiMn1 -xFexPO4 nanocrystals by antisite defects and embedded β -phase for advanced Li-Ion batteries. Nano Lett 17:4934 -4940. https://doi.org/10.1021/acs.nanolett.7b01978	Hu J et al (2017) Tuning Li-Ion diffusion in α -LiMn1 -xFexPO4 nanocrystals by antisite defects and embedded β -phase for advanced Li-Ion batteries. Nano Lett 17:4934 -4940.
33	6	5	322	#/texts/297	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 177.61, 215.47, 37.4]	Huang Wet al (2014) Detailed investigation of Na2.24FePO4CO3 as a cathode material for Na-ion batteries. Sci Rep 4:4188. https://doi.org/10.1038/srep04188 https://www.nature. com/articles/srep04188#supplementary-informa…	Huang Wet al (2014) Detailed investigation of Na2.24FePO4CO3 as a cathode material for Na-ion batteries. Sci Rep 4:4188.	Huang Wet al (2014) Detailed investigation of Na2.24FePO4CO3 as a cathode material for Na-ion batteries. Sci Rep 4:4188. https://doi.org/10.1038/srep04188 https://www.nature. com/articles/srep04188#supplementary-information	Huang Wet al (2014) Detailed investigation of Na2.24FePO4CO3 as a cathode material for Na-ion batteries. Sci Rep 4:4188.
33	7	6	323	#/texts/298	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 218.36, 215.51, 47.31]	Huang W et al (2015a) Self-assembled alluaudite Na2Fe3 -xMnx(PO4)3 micro/nanocompounds for sodium-ion battery electrodes: a new insight into their electronic and geometric structure. Chem Eur J 21:851 -860. https://doi.…	Huang W et al (2015a) Self-assembled alluaudite Na2Fe3 -xMnx(PO4)3 micro/nanocompounds for sodium-ion battery electrodes: a new insight into their electronic and geometric structure. Chem Eur J 21:851 -860. org/10.1002/…	Huang W et al (2015a) Self-assembled alluaudite Na2Fe3 -xMnx(PO4)3 micro/nanocompounds for sodium-ion battery electrodes: a new insight into their electronic and geometric structure. Chem Eur J 21:851 -860. https://doi. org/10.1002/chem.201403062	Huang W et al (2015a) Self-assembled alluaudite Na2Fe3 -xMnx(PO4)3 micro/nanocompounds for sodium-ion battery electrodes: a new insight into their electronic and geometric structure. Chem Eur J 21:851 -860. org/10.1002/chem.201403062
33	8	7	324	#/texts/299	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 269.1, 215.49, 37.34]	Huang Wet al (2015b) A new route toward improved sodium ion batteries: a multifunctional fluffy Na0.67FePO4/CNT nanocactus. Small 11:2170 -2176. https://doi.org/10.1002 /smll.201402246	Huang Wet al (2015b) A new route toward improved sodium ion batteries: a multifunctional fluffy Na0.67FePO4/CNT nanocactus. Small 11:2170 -2176.	Huang Wet al (2015b) A new route toward improved sodium ion batteries: a multifunctional fluffy Na0.67FePO4/CNT nanocactus. Small 11:2170 -2176. https://doi.org/10.1002 /smll.201402246	Huang Wet al (2015b) A new route toward improved sodium ion batteries: a multifunctional fluffy Na0.67FePO4/CNT nanocactus. Small 11:2170 -2176.
33	9	8	325	#/texts/300	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 309.79, 215.52, 47.37]	Hy S, Liu H, Zhang M, Qian D, Hwang B-J, Meng YS (2016) Performance and design considerations for lithium excess layered oxide positive electrode materials for lithium ion batteries. Energy Environ Sci 9:1931 -1954. htt…	Hy S, Liu H, Zhang M, Qian D, Hwang B-J, Meng YS (2016) Performance and design considerations for lithium excess layered oxide positive electrode materials for lithium ion batteries. Energy Environ Sci 9:1931 -1954. org…	Hy S, Liu H, Zhang M, Qian D, Hwang B-J, Meng YS (2016) Performance and design considerations for lithium excess layered oxide positive electrode materials for lithium ion batteries. Energy Environ Sci 9:1931 -1954. https://doi. org/10.1039/C5EE03573B	Hy S, Liu H, Zhang M, Qian D, Hwang B-J, Meng YS (2016) Performance and design considerations for lithium excess layered oxide positive electrode materials for lithium ion batteries. Energy Environ Sci 9:1931 -1954. org/10.1039/C5EE03573B
33	10	9	326	#/texts/301	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 360.53, 215.5, 37.44]	Islam MS, Dominko R, Masquelier C, Sirisopanaporn C, Armstrong AR, Bruce PG (2011) Silicate cathodes for lithium batteries: alternatives to phosphates? J Mater Chem 21: 9811 -9818. https://doi.org/10.1039/C1JM10312A	Islam MS, Dominko R, Masquelier C, Sirisopanaporn C, Armstrong AR, Bruce PG (2011) Silicate cathodes for lithium batteries: alternatives to phosphates? J Mater Chem 21: 9811 -9818.	Islam MS, Dominko R, Masquelier C, Sirisopanaporn C, Armstrong AR, Bruce PG (2011) Silicate cathodes for lithium batteries: alternatives to phosphates? J Mater Chem 21: 9811 -9818. https://doi.org/10.1039/C1JM10312A	Islam MS, Dominko R, Masquelier C, Sirisopanaporn C, Armstrong AR, Bruce PG (2011) Silicate cathodes for lithium batteries: alternatives to phosphates? J Mater Chem 21: 9811 -9818.
33	11	10	327	#/texts/302	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 401.23, 215.42, 37.34]	Jang DH, Shin YJ, Oh SM (1996) Dissolution of Spinel Oxides and Capacity Losses in 4 V Li / Li x Mn2 O 4 Cells. J Electrochem Soc 143:2204 -2211. https://doi.org/10.1149 /1.1836981	Jang DH, Shin YJ, Oh SM (1996) Dissolution of Spinel Oxides and Capacity Losses in 4 V Li / Li x Mn2 O 4 Cells. J Electrochem Soc 143:2204 -2211.	Jang DH, Shin YJ, Oh SM (1996) Dissolution of Spinel Oxides and Capacity Losses in 4 V Li / Li x Mn2 O 4 Cells. J Electrochem Soc 143:2204 -2211. https://doi.org/10.1149 /1.1836981	Jang DH, Shin YJ, Oh SM (1996) Dissolution of Spinel Oxides and Capacity Losses in 4 V Li / Li x Mn2 O 4 Cells. J Electrochem Soc 143:2204 -2211.
33	12	11	328	#/texts/303	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 441.98, 215.51, 37.34]	Jarry A et al (2015) The formation mechanism of fluorescent metal complexes at the LixNi0.5Mn1.5O4 -δ /carbonate ester electrolyte interface. J Am Chem Soc 137:3533 -3539. https://doi.org/10.1021/ja5116698	Jarry A et al (2015) The formation mechanism of fluorescent metal complexes at the LixNi0.5Mn1.5O4 -δ /carbonate ester electrolyte interface. J Am Chem Soc 137:3533 -3539.	Jarry A et al (2015) The formation mechanism of fluorescent metal complexes at the LixNi0.5Mn1.5O4 -δ /carbonate ester electrolyte interface. J Am Chem Soc 137:3533 -3539. https://doi.org/10.1021/ja5116698	Jarry A et al (2015) The formation mechanism of fluorescent metal complexes at the LixNi0.5Mn1.5O4 -δ /carbonate ester electrolyte interface. J Am Chem Soc 137:3533 -3539.
33	13	12	329	#/texts/304	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 482.68, 215.52, 47.37]	Jarvis K, Deng Z, Manthiram A, Ferreira P (2012) Understanding the role of lithium content on the structure and capacity of lithium-rich layered oxides by aberration-corrected STEM, D-STEM, and EDS. Microsc Microanal 18…	Jarvis K, Deng Z, Manthiram A, Ferreira P (2012) Understanding the role of lithium content on the structure and capacity of lithium-rich layered oxides by aberration-corrected STEM, D-STEM, and EDS. Microsc Microanal 18…	Jarvis K, Deng Z, Manthiram A, Ferreira P (2012) Understanding the role of lithium content on the structure and capacity of lithium-rich layered oxides by aberration-corrected STEM, D-STEM, and EDS. Microsc Microanal 18:1484 -1485. https://doi.org/10.1017/S1431927612009270	Jarvis K, Deng Z, Manthiram A, Ferreira P (2012) Understanding the role of lithium content on the structure and capacity of lithium-rich layered oxides by aberration-corrected STEM, D-STEM, and EDS. Microsc Microanal 18:1484 -1485.
33	14	13	330	#/texts/305	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 533.41, 215.42, 37.34]	Jiang Y et al (2016) Prussian Blue@C composite as an ultrahighrate and long-life sodium-ion battery cathode. Adv Funct Mater 26:5315 -5321. https://doi.org/10.1002 /adfm.201600747	Jiang Y et al (2016) Prussian Blue@C composite as an ultrahighrate and long-life sodium-ion battery cathode. Adv Funct Mater 26:5315 -5321.	Jiang Y et al (2016) Prussian Blue@C composite as an ultrahighrate and long-life sodium-ion battery cathode. Adv Funct Mater 26:5315 -5321. https://doi.org/10.1002 /adfm.201600747	Jiang Y et al (2016) Prussian Blue@C composite as an ultrahighrate and long-life sodium-ion battery cathode. Adv Funct Mater 26:5315 -5321.
33	15	14	331	#/texts/306	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 574.11, 215.5, 37.5]	Jin Y-C, Lin C-Y, Duh J-G (2012) Improving rate capability of high potential LiNi0.5Mn1.5O4-x cathode materials via increasing oxygen non-stoichiometries. Electrochim Acta 69: 45 -50. https://doi.org/10.1016/j.electacta…	Jin Y-C, Lin C-Y, Duh J-G (2012) Improving rate capability of high potential LiNi0.5Mn1.5O4-x cathode materials via increasing oxygen non-stoichiometries. Electrochim Acta 69: 45 -50.	Jin Y-C, Lin C-Y, Duh J-G (2012) Improving rate capability of high potential LiNi0.5Mn1.5O4-x cathode materials via increasing oxygen non-stoichiometries. Electrochim Acta 69: 45 -50. https://doi.org/10.1016/j.electacta.2012.02.022	Jin Y-C, Lin C-Y, Duh J-G (2012) Improving rate capability of high potential LiNi0.5Mn1.5O4-x cathode materials via increasing oxygen non-stoichiometries. Electrochim Acta 69: 45 -50.
33	16	15	332	#/texts/307	list_item	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 614.87, 215.48, 27.39]	Kang B, Ceder G (2009) Battery materials for ultrafast charging and discharging. Nature 458:190 -193. https://doi. org/10.1038/nature07853	Kang B, Ceder G (2009) Battery materials for ultrafast charging and discharging. Nature 458:190 -193. org/10.1038/nature07853	Kang B, Ceder G (2009) Battery materials for ultrafast charging and discharging. Nature 458:190 -193. https://doi. org/10.1038/nature07853	Kang B, Ceder G (2009) Battery materials for ultrafast charging and discharging. Nature 458:190 -193. org/10.1038/nature07853
33	17	16	333	#/texts/308	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p33:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 645.68, 215.51, 17.33]	Kang K, Meng YS, Bréger J, Grey CP, Ceder G (2006) Electrodes with high power and high capacity for rechargeable lithium	Kang K, Meng YS, Bréger J, Grey CP, Ceder G (2006) Electrodes with high power and high capacity for rechargeable lithium	Kang K, Meng YS, Bréger J, Grey CP, Ceder G (2006) Electrodes with high power and high capacity for rechargeable lithium	Kang K, Meng YS, Bréger J, Grey CP, Ceder G (2006) Electrodes with high power and high capacity for rechargeable lithium
33	2	17	334	#/texts/293	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p33:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 67.04, 7.44]	Page 33 of 40 160	Page 33 of 40 160	Page 33 of 40 160	Page 33 of 40 160
33	18	18	335	#/texts/309	list_item	page_margin_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p33:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[301.83, 53.91, 198.45, 18.86]	batteries. Science 311:977 -980. https://doi.org/10.1126 /science.1122152	batteries. Science 311:977 -980. /science.1122152	batteries. Science 311:977 -980. https://doi.org/10.1126 /science.1122152	batteries. Science 311:977 -980. /science.1122152
33	19	19	336	#/texts/310	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 75.46, 215.52, 37.34]	Kawabe Y et al (2011) Synthesis and electrode performance of carbon coated Na2FePO4F for rechargeable Na batteries. Electrochem Commun 13:1225 -1228. https://doi. org/10.1016/j.elecom.2011.08.038	Kawabe Y et al (2011) Synthesis and electrode performance of carbon coated Na2FePO4F for rechargeable Na batteries. Electrochem Commun 13:1225 -1228. org/10.1016/j.elecom.2011.08.038	Kawabe Y et al (2011) Synthesis and electrode performance of carbon coated Na2FePO4F for rechargeable Na batteries. Electrochem Commun 13:1225 -1228. https://doi. org/10.1016/j.elecom.2011.08.038	Kawabe Y et al (2011) Synthesis and electrode performance of carbon coated Na2FePO4F for rechargeable Na batteries. Electrochem Commun 13:1225 -1228. org/10.1016/j.elecom.2011.08.038
33	20	20	337	#/texts/311	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 115.48, 215.47, 37.34]	Kawai H, Nagata M, Tukamoto H, Westa AR (1998) A new lithium cathode LiCoMnO4: toward practical 5 V lithium batteries. Electrochem Solid-State Lett 1:212 -214. https://doi.org/10.1149/1.1390688	Kawai H, Nagata M, Tukamoto H, Westa AR (1998) A new lithium cathode LiCoMnO4: toward practical 5 V lithium batteries. Electrochem Solid-State Lett 1:212 -214.	Kawai H, Nagata M, Tukamoto H, Westa AR (1998) A new lithium cathode LiCoMnO4: toward practical 5 V lithium batteries. Electrochem Solid-State Lett 1:212 -214. https://doi.org/10.1149/1.1390688	Kawai H, Nagata M, Tukamoto H, Westa AR (1998) A new lithium cathode LiCoMnO4: toward practical 5 V lithium batteries. Electrochem Solid-State Lett 1:212 -214.
33	21	21	338	#/texts/312	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 155.5, 215.42, 27.3]	Kikkawa S, Miyazaki S, Koizumi M (1985) Sodium deintercalation from α -NaFeO2. Mater Res Bull 20:373 -377. https://doi.org/10.1016/0025-5408(85)90003-0	Kikkawa S, Miyazaki S, Koizumi M (1985) Sodium deintercalation from α -NaFeO2. Mater Res Bull 20:373 -377.	Kikkawa S, Miyazaki S, Koizumi M (1985) Sodium deintercalation from α -NaFeO2. Mater Res Bull 20:373 -377. https://doi.org/10.1016/0025-5408(85)90003-0	Kikkawa S, Miyazaki S, Koizumi M (1985) Sodium deintercalation from α -NaFeO2. Mater Res Bull 20:373 -377.
33	22	22	339	#/texts/313	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 185.48, 215.48, 47.47]	Kim JH, Myung ST, Yoon CS, Kang SG, Sun YK (2004) Comparative study of LiNi0.5Mn1.5O4-delta and LiNi0.5Mn1.5O4 cathodes having two crystallographic structures: Fd(3)over-barm and P4(3)32. Chem Mater 16: 906 -914. https:…	Kim JH, Myung ST, Yoon CS, Kang SG, Sun YK (2004) Comparative study of LiNi0.5Mn1.5O4-delta and LiNi0.5Mn1.5O4 cathodes having two crystallographic structures: Fd(3)over-barm and P4(3)32. Chem Mater 16: 906 -914.	Kim JH, Myung ST, Yoon CS, Kang SG, Sun YK (2004) Comparative study of LiNi0.5Mn1.5O4-delta and LiNi0.5Mn1.5O4 cathodes having two crystallographic structures: Fd(3)over-barm and P4(3)32. Chem Mater 16: 906 -914. https://doi.org/10.1021/cm035050s	Kim JH, Myung ST, Yoon CS, Kang SG, Sun YK (2004) Comparative study of LiNi0.5Mn1.5O4-delta and LiNi0.5Mn1.5O4 cathodes having two crystallographic structures: Fd(3)over-barm and P4(3)32. Chem Mater 16: 906 -914.
33	23	23	340	#/texts/314	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 235.48, 215.52, 37.44]	Kim JC, Moore CJ, Kang B, Hautier G, Jain A, Ceder G (2011) Synthesis and electrochemical properties of monoclinic LiMnBO3 as a Li intercalation material. J Electrochem Soc 158:A309 -A315. https://doi.org/10.1149/1.3536…	Kim JC, Moore CJ, Kang B, Hautier G, Jain A, Ceder G (2011) Synthesis and electrochemical properties of monoclinic LiMnBO3 as a Li intercalation material. J Electrochem Soc 158:A309 -A315.	Kim JC, Moore CJ, Kang B, Hautier G, Jain A, Ceder G (2011) Synthesis and electrochemical properties of monoclinic LiMnBO3 as a Li intercalation material. J Electrochem Soc 158:A309 -A315. https://doi.org/10.1149/1.3536532	Kim JC, Moore CJ, Kang B, Hautier G, Jain A, Ceder G (2011) Synthesis and electrochemical properties of monoclinic LiMnBO3 as a Li intercalation material. J Electrochem Soc 158:A309 -A315.
33	24	24	341	#/texts/315	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 275.5, 215.51, 37.34]	Kim D, Lee E, Slater M, Lu W, Rood S, Johnson CS (2012a) Layered Na[Ni1/3Fe1/3Mn1/3]O2 cathodes for Na-ion battery application. Electrochem Commun 18:66 -69. https://doi.org/10.1016/j.elecom.2012.02.020	Kim D, Lee E, Slater M, Lu W, Rood S, Johnson CS (2012a) Layered Na[Ni1/3Fe1/3Mn1/3]O2 cathodes for Na-ion battery application. Electrochem Commun 18:66 -69.	Kim D, Lee E, Slater M, Lu W, Rood S, Johnson CS (2012a) Layered Na[Ni1/3Fe1/3Mn1/3]O2 cathodes for Na-ion battery application. Electrochem Commun 18:66 -69. https://doi.org/10.1016/j.elecom.2012.02.020	Kim D, Lee E, Slater M, Lu W, Rood S, Johnson CS (2012a) Layered Na[Ni1/3Fe1/3Mn1/3]O2 cathodes for Na-ion battery application. Electrochem Commun 18:66 -69.
33	25	25	342	#/texts/316	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 315.52, 215.5, 37.44]	Kim H et al (2012b) New iron-based mixed-polyanion cathodes for lithium and sodium rechargeable batteries: combined first principles calculations and experimental study. J Am Chem Soc 134:10369 -10372. https://doi.org/1…	Kim H et al (2012b) New iron-based mixed-polyanion cathodes for lithium and sodium rechargeable batteries: combined first principles calculations and experimental study. J Am Chem Soc 134:10369 -10372.	Kim H et al (2012b) New iron-based mixed-polyanion cathodes for lithium and sodium rechargeable batteries: combined first principles calculations and experimental study. J Am Chem Soc 134:10369 -10372. https://doi.org/10.1021/ja3038646	Kim H et al (2012b) New iron-based mixed-polyanion cathodes for lithium and sodium rechargeable batteries: combined first principles calculations and experimental study. J Am Chem Soc 134:10369 -10372.
33	26	26	343	#/texts/317	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 355.54, 215.49, 37.44]	Kim H et al (2013a) Understanding the electrochemical mechanism of t h e new i r o n - b a s e d mixed-phosphate Na4Fe3(PO4)2(P2O7) in a Na rechargeable battery. Chem Mater 25:3614 -3622. https://doi.org/10.1021/cm40138…	Kim H et al (2013a) Understanding the electrochemical mechanism of t h e new i r o n - b a s e d mixed-phosphate Na4Fe3(PO4)2(P2O7) in a Na rechargeable battery. Chem Mater 25:3614 -3622.	Kim H et al (2013a) Understanding the electrochemical mechanism of t h e new i r o n - b a s e d mixed-phosphate Na4Fe3(PO4)2(P2O7) in a Na rechargeable battery. Chem Mater 25:3614 -3622. https://doi.org/10.1021/cm4013816	Kim H et al (2013a) Understanding the electrochemical mechanism of t h e new i r o n - b a s e d mixed-phosphate Na4Fe3(PO4)2(P2O7) in a Na rechargeable battery. Chem Mater 25:3614 -3622.
33	27	27	344	#/texts/318	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 395.5, 215.5, 47.37]	Kim H et al (2013b) Na2FeP2O7 as a promising iron-based pyrophosphate cathode for sodium rechargeable batteries: a combined experimental and theoretical study. Adv Funct Mater 23:1147 -1155. https://doi.org/10.1002 /adf…	Kim H et al (2013b) Na2FeP2O7 as a promising iron-based pyrophosphate cathode for sodium rechargeable batteries: a combined experimental and theoretical study. Adv Funct Mater 23:1147 -1155.	Kim H et al (2013b) Na2FeP2O7 as a promising iron-based pyrophosphate cathode for sodium rechargeable batteries: a combined experimental and theoretical study. Adv Funct Mater 23:1147 -1155. https://doi.org/10.1002 /adfm.201201589	Kim H et al (2013b) Na2FeP2O7 as a promising iron-based pyrophosphate cathode for sodium rechargeable batteries: a combined experimental and theoretical study. Adv Funct Mater 23:1147 -1155.
33	28	28	345	#/texts/319	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 445.56, 215.46, 27.3]	Kim Y, Ha K-H, Oh SM, Lee KT (2014) High-capacity anode materials for sodium-ion batteries. Chem Eur J 20:11980 -11992. https://doi.org/10.1002/chem.201402511	Kim Y, Ha K-H, Oh SM, Lee KT (2014) High-capacity anode materials for sodium-ion batteries. Chem Eur J 20:11980 -11992.	Kim Y, Ha K-H, Oh SM, Lee KT (2014) High-capacity anode materials for sodium-ion batteries. Chem Eur J 20:11980 -11992. https://doi.org/10.1002/chem.201402511	Kim Y, Ha K-H, Oh SM, Lee KT (2014) High-capacity anode materials for sodium-ion batteries. Chem Eur J 20:11980 -11992.
33	29	29	346	#/texts/320	list_item	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 475.55, 215.49, 37.34]	Kim H et al (2015a) Anomalous Jahn-Teller behavior in a manganese-based mixed-phosphate cathode for sodium ion batteries. Energy Environ Sci 8:3325 -3335. https://doi. org/10.1039/C5EE01876E	Kim H et al (2015a) Anomalous Jahn-Teller behavior in a manganese-based mixed-phosphate cathode for sodium ion batteries. Energy Environ Sci 8:3325 -3335. org/10.1039/C5EE01876E	Kim H et al (2015a) Anomalous Jahn-Teller behavior in a manganese-based mixed-phosphate cathode for sodium ion batteries. Energy Environ Sci 8:3325 -3335. https://doi. org/10.1039/C5EE01876E	Kim H et al (2015a) Anomalous Jahn-Teller behavior in a manganese-based mixed-phosphate cathode for sodium ion batteries. Energy Environ Sci 8:3325 -3335. org/10.1039/C5EE01876E
33	30	30	347	#/texts/321	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 515.57, 215.5, 37.34]	Kim J et al (2015b) Unexpected discovery of low-cost maricite NaFePO4 as a high-performance electrode for Na-ion batteries. Energy Environ Sci 8:540 -545. https://doi.org/10.1039 /C4EE03215B	Kim J et al (2015b) Unexpected discovery of low-cost maricite NaFePO4 as a high-performance electrode for Na-ion batteries. Energy Environ Sci 8:540 -545.	Kim J et al (2015b) Unexpected discovery of low-cost maricite NaFePO4 as a high-performance electrode for Na-ion batteries. Energy Environ Sci 8:540 -545. https://doi.org/10.1039 /C4EE03215B	Kim J et al (2015b) Unexpected discovery of low-cost maricite NaFePO4 as a high-performance electrode for Na-ion batteries. Energy Environ Sci 8:540 -545.
33	31	31	348	#/texts/322	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 555.59, 215.49, 37.34]	Kim JC, Seo D-H, Chen H, Ceder G (2015c) The effect of antisite disorder and particle size on Li intercalation kinetics in monoclinic LiMnBO3. Adv Energy Mater 5:1401916. https://doi.org/10.1002/aenm.201401916	Kim JC, Seo D-H, Chen H, Ceder G (2015c) The effect of antisite disorder and particle size on Li intercalation kinetics in monoclinic LiMnBO3. Adv Energy Mater 5:1401916.	Kim JC, Seo D-H, Chen H, Ceder G (2015c) The effect of antisite disorder and particle size on Li intercalation kinetics in monoclinic LiMnBO3. Adv Energy Mater 5:1401916. https://doi.org/10.1002/aenm.201401916	Kim JC, Seo D-H, Chen H, Ceder G (2015c) The effect of antisite disorder and particle size on Li intercalation kinetics in monoclinic LiMnBO3. Adv Energy Mater 5:1401916.
33	32	32	349	#/texts/323	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 595.55, 215.46, 37.47]	Kim H et al (2016a) Highly stable iron- and manganese-based cathodes for long-lasting sodium rechargeable batteries. Chem Mater 28:7241 -7249. https://doi.org/10.1021/acs. chemmater.6b01766	Kim H et al (2016a) Highly stable iron- and manganese-based cathodes for long-lasting sodium rechargeable batteries. Chem Mater 28:7241 -7249.	Kim H et al (2016a) Highly stable iron- and manganese-based cathodes for long-lasting sodium rechargeable batteries. Chem Mater 28:7241 -7249. https://doi.org/10.1021/acs. chemmater.6b01766	Kim H et al (2016a) Highly stable iron- and manganese-based cathodes for long-lasting sodium rechargeable batteries. Chem Mater 28:7241 -7249.
33	33	33	350	#/texts/324	list_item	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p33:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 635.65, 215.49, 27.36]	Kim M-S et al (2016b) Synthesis of reduced graphene oxidemodified LiMn0.75Fe0.25PO4 microspheres by saltassisted spray drying for high-performance lithium-ion	Kim M-S et al (2016b) Synthesis of reduced graphene oxidemodified LiMn0.75Fe0.25PO4 microspheres by saltassisted spray drying for high-performance lithium-ion	Kim M-S et al (2016b) Synthesis of reduced graphene oxidemodified LiMn0.75Fe0.25PO4 microspheres by saltassisted spray drying for high-performance lithium-ion	Kim M-S et al (2016b) Synthesis of reduced graphene oxidemodified LiMn0.75Fe0.25PO4 microspheres by saltassisted spray drying for high-performance lithium-ion
34	1	1	351	#/texts/325	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_1_of_2	1	2	p34:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
34	2	2	352	#/texts/326	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_1_of_2	1	2	p34:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 34 of 40	Page 34 of 40	Page 34 of 40	Page 34 of 40
34	4	3	353	#/texts/328	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[63.72, 55.45, 198.46, 27.36]	batteries. Sci Rep 6:26686. https://doi.org/10.1038 /srep26686 https://www.nature.com/articles/srep26686 #supplementary-information	batteries. Sci Rep 6:26686. /srep26686 #supplementary-information	batteries. Sci Rep 6:26686. https://doi.org/10.1038 /srep26686 https://www.nature.com/articles/srep26686 #supplementary-information	batteries. Sci Rep 6:26686. /srep26686 #supplementary-information
34	5	4	354	#/texts/329	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 85.44, 215.5, 37.4]	Ko JS et al (2017) High-rate capability of Na2FePO4F nanoparticles by enhancing surface carbon functionality for Na-ion batteries. J Mater Chem A 5:18707 -18715. https://doi. org/10.1039/C7TA05680J	Ko JS et al (2017) High-rate capability of Na2FePO4F nanoparticles by enhancing surface carbon functionality for Na-ion batteries. J Mater Chem A 5:18707 -18715. org/10.1039/C7TA05680J	Ko JS et al (2017) High-rate capability of Na2FePO4F nanoparticles by enhancing surface carbon functionality for Na-ion batteries. J Mater Chem A 5:18707 -18715. https://doi. org/10.1039/C7TA05680J	Ko JS et al (2017) High-rate capability of Na2FePO4F nanoparticles by enhancing surface carbon functionality for Na-ion batteries. J Mater Chem A 5:18707 -18715. org/10.1039/C7TA05680J
34	6	5	355	#/texts/330	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 125.46, 215.53, 47.37]	KogaHetal (2012) Li1.20Mn0.54Co0.13Ni0.13O2 with different particle sizes as attractive positive electrode materials for lithium-ion batteries: insights into their structure. J Phys Chem C 116:13497 -13506. https://doi.…	KogaHetal (2012) Li1.20Mn0.54Co0.13Ni0.13O2 with different particle sizes as attractive positive electrode materials for lithium-ion batteries: insights into their structure. J Phys Chem C 116:13497 -13506.	KogaHetal (2012) Li1.20Mn0.54Co0.13Ni0.13O2 with different particle sizes as attractive positive electrode materials for lithium-ion batteries: insights into their structure. J Phys Chem C 116:13497 -13506. https://doi.org/10.1021 /jp301879x	KogaHetal (2012) Li1.20Mn0.54Co0.13Ni0.13O2 with different particle sizes as attractive positive electrode materials for lithium-ion batteries: insights into their structure. J Phys Chem C 116:13497 -13506.
34	7	6	356	#/texts/331	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 175.46, 215.45, 37.4]	Kokalj A, Dominko R, Mali G, Meden A, Gaberscek M, Jamnik J (2007) Beyond one-electron reaction in Li cathode materials: designing Li2MnxFe1-xSiO4. Chem Mater 19:3633 -3640. https://doi.org/10.1021/cm063011l	Kokalj A, Dominko R, Mali G, Meden A, Gaberscek M, Jamnik J (2007) Beyond one-electron reaction in Li cathode materials: designing Li2MnxFe1-xSiO4. Chem Mater 19:3633 -3640.	Kokalj A, Dominko R, Mali G, Meden A, Gaberscek M, Jamnik J (2007) Beyond one-electron reaction in Li cathode materials: designing Li2MnxFe1-xSiO4. Chem Mater 19:3633 -3640. https://doi.org/10.1021/cm063011l	Kokalj A, Dominko R, Mali G, Meden A, Gaberscek M, Jamnik J (2007) Beyond one-electron reaction in Li cathode materials: designing Li2MnxFe1-xSiO4. Chem Mater 19:3633 -3640.
34	8	7	357	#/texts/332	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 215.48, 215.48, 37.4]	Komaba S, Takei C, Nakayama T, Ogata A, Yabuuchi N (2010) Electrochemical intercalation activity of layered NaCrO2 vs. LiCrO2. Electrochem Commun 12:355 -358. https://doi. org/10.1016/j.elecom.2009.12.033	Komaba S, Takei C, Nakayama T, Ogata A, Yabuuchi N (2010) Electrochemical intercalation activity of layered NaCrO2 vs. LiCrO2. Electrochem Commun 12:355 -358. org/10.1016/j.elecom.2009.12.033	Komaba S, Takei C, Nakayama T, Ogata A, Yabuuchi N (2010) Electrochemical intercalation activity of layered NaCrO2 vs. LiCrO2. Electrochem Commun 12:355 -358. https://doi. org/10.1016/j.elecom.2009.12.033	Komaba S, Takei C, Nakayama T, Ogata A, Yabuuchi N (2010) Electrochemical intercalation activity of layered NaCrO2 vs. LiCrO2. Electrochem Commun 12:355 -358. org/10.1016/j.elecom.2009.12.033
34	9	8	358	#/texts/333	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 255.5, 215.52, 37.34]	Kumakura S, Tahara Y, Kubota K, Chihara K, Komaba S (2016) Sodium and manganese stoichiometry of P2-Type Na2/ 3MnO2. Angew Chem Int Ed 55:12760 -12763. https://doi. org/10.1002/anie.201606415	Kumakura S, Tahara Y, Kubota K, Chihara K, Komaba S (2016) Sodium and manganese stoichiometry of P2-Type Na2/ 3MnO2. Angew Chem Int Ed 55:12760 -12763. org/10.1002/anie.201606415	Kumakura S, Tahara Y, Kubota K, Chihara K, Komaba S (2016) Sodium and manganese stoichiometry of P2-Type Na2/ 3MnO2. Angew Chem Int Ed 55:12760 -12763. https://doi. org/10.1002/anie.201606415	Kumakura S, Tahara Y, Kubota K, Chihara K, Komaba S (2016) Sodium and manganese stoichiometry of P2-Type Na2/ 3MnO2. Angew Chem Int Ed 55:12760 -12763. org/10.1002/anie.201606415
34	10	9	359	#/texts/334	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 293.98, 215.54, 48.9]	Kumakura S, Tahara Y, Sato S, Kubota K, Komaba S (2017) P ′ 2Na2/3Mn0.9Me0.1O2 (Me = Mg, Ti, Co, Ni, Cu, and Zn): correlation between orthorhombic distortion and electrochemical property. Chem Mater 29:8958 -8962. https…	Kumakura S, Tahara Y, Sato S, Kubota K, Komaba S (2017) P ′ 2Na2/3Mn0.9Me0.1O2 (Me = Mg, Ti, Co, Ni, Cu, and Zn): correlation between orthorhombic distortion and electrochemical property. Chem Mater 29:8958 -8962. org/1…	Kumakura S, Tahara Y, Sato S, Kubota K, Komaba S (2017) P ′ 2Na2/3Mn0.9Me0.1O2 (Me = Mg, Ti, Co, Ni, Cu, and Zn): correlation between orthorhombic distortion and electrochemical property. Chem Mater 29:8958 -8962. https://doi. org/10.1021/acs.chemmater.7b02772	Kumakura S, Tahara Y, Sato S, Kubota K, Komaba S (2017) P ′ 2Na2/3Mn0.9Me0.1O2 (Me = Mg, Ti, Co, Ni, Cu, and Zn): correlation between orthorhombic distortion and electrochemical property. Chem Mater 29:8958 -8962. org/10.1021/acs.chemmater.7b02772
34	11	10	360	#/texts/335	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 345.51, 215.43, 47.37]	Kwon M-S, Lim SG, Park Y, Lee S-M, Chung KY, Shin TJ, Lee KT (2017) P2 Orthorhombic Na0.7[Mn1 -xLix]O2+y as cathode materials for Na-Ion batteries. ACS Appl Mater Interfaces 9:14758 -14768. https://doi.org/10.1021/acsam…	Kwon M-S, Lim SG, Park Y, Lee S-M, Chung KY, Shin TJ, Lee KT (2017) P2 Orthorhombic Na0.7[Mn1 -xLix]O2+y as cathode materials for Na-Ion batteries. ACS Appl Mater Interfaces 9:14758 -14768.	Kwon M-S, Lim SG, Park Y, Lee S-M, Chung KY, Shin TJ, Lee KT (2017) P2 Orthorhombic Na0.7[Mn1 -xLix]O2+y as cathode materials for Na-Ion batteries. ACS Appl Mater Interfaces 9:14758 -14768. https://doi.org/10.1021/acsami.7 b00058	Kwon M-S, Lim SG, Park Y, Lee S-M, Chung KY, Shin TJ, Lee KT (2017) P2 Orthorhombic Na0.7[Mn1 -xLix]O2+y as cathode materials for Na-Ion batteries. ACS Appl Mater Interfaces 9:14758 -14768.
34	12	11	361	#/texts/336	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 395.51, 215.53, 27.46]	Larcher D, Tarascon JM (2015) Towards greener and more sustainable batteries for electrical energy storage. Nat Chem 7: 19 -29. https://doi.org/10.1038/nchem.2085	Larcher D, Tarascon JM (2015) Towards greener and more sustainable batteries for electrical energy storage. Nat Chem 7: 19 -29.	Larcher D, Tarascon JM (2015) Towards greener and more sustainable batteries for electrical energy storage. Nat Chem 7: 19 -29. https://doi.org/10.1038/nchem.2085	Larcher D, Tarascon JM (2015) Towards greener and more sustainable batteries for electrical energy storage. Nat Chem 7: 19 -29.
34	13	12	362	#/texts/337	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 425.56, 215.5, 37.34]	Law M, Ramar V, Balaya P (2015) Synthesis, characterisation and enhanced electrochemical performance of nanostructured Na2FePO4F for sodium batteries. RSC Adv 5:50155 -50164. https://doi.org/10.1039/C5RA07583A	Law M, Ramar V, Balaya P (2015) Synthesis, characterisation and enhanced electrochemical performance of nanostructured Na2FePO4F for sodium batteries. RSC Adv 5:50155 -50164.	Law M, Ramar V, Balaya P (2015) Synthesis, characterisation and enhanced electrochemical performance of nanostructured Na2FePO4F for sodium batteries. RSC Adv 5:50155 -50164. https://doi.org/10.1039/C5RA07583A	Law M, Ramar V, Balaya P (2015) Synthesis, characterisation and enhanced electrochemical performance of nanostructured Na2FePO4F for sodium batteries. RSC Adv 5:50155 -50164.
34	14	13	363	#/texts/338	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 465.58, 215.45, 37.34]	Lee KT, Ramesh TN, Nan F, Botton G, Nazar LF (2011) Topochemical synthesis of sodium metal phosphate olivines for sodium-ion batteries. Chem Mater 23:3593 -3600. https://doi.org/10.1021/cm200450y	Lee KT, Ramesh TN, Nan F, Botton G, Nazar LF (2011) Topochemical synthesis of sodium metal phosphate olivines for sodium-ion batteries. Chem Mater 23:3593 -3600.	Lee KT, Ramesh TN, Nan F, Botton G, Nazar LF (2011) Topochemical synthesis of sodium metal phosphate olivines for sodium-ion batteries. Chem Mater 23:3593 -3600. https://doi.org/10.1021/cm200450y	Lee KT, Ramesh TN, Nan F, Botton G, Nazar LF (2011) Topochemical synthesis of sodium metal phosphate olivines for sodium-ion batteries. Chem Mater 23:3593 -3600.
34	15	14	364	#/texts/339	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 505.54, 215.51, 57.41]	Lee H-W, Wang RY, Pasta M, Woo Lee S, Liu N, Cui Y (2014) Manganese hexacyanomanganate open framework as a highcapacity positive electrode material for sodium-ion batteries. Nat Commun 5:5280. https://doi.org/10.1038/nc…	Lee H-W, Wang RY, Pasta M, Woo Lee S, Liu N, Cui Y (2014) Manganese hexacyanomanganate open framework as a highcapacity positive electrode material for sodium-ion batteries. Nat Commun 5:5280.	Lee H-W, Wang RY, Pasta M, Woo Lee S, Liu N, Cui Y (2014) Manganese hexacyanomanganate open framework as a highcapacity positive electrode material for sodium-ion batteries. Nat Commun 5:5280. https://doi.org/10.1038/ncomms6280 https://www.nature.com/articles/ncomms6280 #supplementary-information	Lee H-W, Wang RY, Pasta M, Woo Lee S, Liu N, Cui Y (2014) Manganese hexacyanomanganate open framework as a highcapacity positive electrode material for sodium-ion batteries. Nat Commun 5:5280.
34	16	15	365	#/texts/340	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 565.57, 215.53, 47.37]	Lee E, Brown DE, Alp EE, Ren Y, Lu J, Woo J-J, Johnson CS (2015) New insights into the performance degradation of FeBased layered oxides in sodium-ion batteries: instability of Fe3+/Fe4+ redox in α -NaFeO2. Chem Mater 2…	Lee E, Brown DE, Alp EE, Ren Y, Lu J, Woo J-J, Johnson CS (2015) New insights into the performance degradation of FeBased layered oxides in sodium-ion batteries: instability of Fe3+/Fe4+ redox in α -NaFeO2. Chem Mater 2…	Lee E, Brown DE, Alp EE, Ren Y, Lu J, Woo J-J, Johnson CS (2015) New insights into the performance degradation of FeBased layered oxides in sodium-ion batteries: instability of Fe3+/Fe4+ redox in α -NaFeO2. Chem Mater 27:6755 -6764. https://doi.org/10.1021/acs.chemmater.5b02918	Lee E, Brown DE, Alp EE, Ren Y, Lu J, Woo J-J, Johnson CS (2015) New insights into the performance degradation of FeBased layered oxides in sodium-ion batteries: instability of Fe3+/Fe4+ redox in α -NaFeO2. Chem Mater 27:6755 -6764.
34	17	16	366	#/texts/341	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p34:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 615.56, 215.47, 47.37]	Lee M-J, Lho E, Bai P, Chae S, Li J, Cho J (2017) Lowt e m p e r a t u r e c a r b o n c o a t i n g o f n a n o s i z e d Li1.015Al0.06Mn1.925O4 and high-density electrode for high-power Li-Ion batteries. Nano Lett 17:…	Lee M-J, Lho E, Bai P, Chae S, Li J, Cho J (2017) Lowt e m p e r a t u r e c a r b o n c o a t i n g o f n a n o s i z e d Li1.015Al0.06Mn1.925O4 and high-density electrode for high-power Li-Ion batteries. Nano Lett 17:…	Lee M-J, Lho E, Bai P, Chae S, Li J, Cho J (2017) Lowt e m p e r a t u r e c a r b o n c o a t i n g o f n a n o s i z e d Li1.015Al0.06Mn1.925O4 and high-density electrode for high-power Li-Ion batteries. Nano Lett 17:3744 -3751. https://doi.org/10.1021/acs.nanolett.7b01076	Lee M-J, Lho E, Bai P, Chae S, Li J, Cho J (2017) Lowt e m p e r a t u r e c a r b o n c o a t i n g o f n a n o s i z e d Li1.015Al0.06Mn1.925O4 and high-density electrode for high-power Li-Ion batteries. Nano Lett 17:3744 -3751.
34	3	17	367	#/texts/327	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p34:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
34	18	18	368	#/texts/342	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 55.38, 215.52, 37.42]	Legagneur V et al (2001) LiMBO3 (M=Mn, Fe, Co):: synthesis, crystal structure and lithium deinsertion/insertion properties. Solid State Ionics 139:37 -46. https://doi.org/10.1016/S01672738(00)00813-4	Legagneur V et al (2001) LiMBO3 (M=Mn, Fe, Co):: synthesis, crystal structure and lithium deinsertion/insertion properties. Solid State Ionics 139:37 -46.	Legagneur V et al (2001) LiMBO3 (M=Mn, Fe, Co):: synthesis, crystal structure and lithium deinsertion/insertion properties. Solid State Ionics 139:37 -46. https://doi.org/10.1016/S01672738(00)00813-4	Legagneur V et al (2001) LiMBO3 (M=Mn, Fe, Co):: synthesis, crystal structure and lithium deinsertion/insertion properties. Solid State Ionics 139:37 -46.
34	19	19	369	#/texts/343	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 96.15, 215.51, 27.4]	Lei Y, Li X, Liu L, Ceder G (2014) Synthesis and stoichiometry of different layered sodium cobalt oxides. Chem Mater 26: 5288 -5296. https://doi.org/10.1021/cm5021788	Lei Y, Li X, Liu L, Ceder G (2014) Synthesis and stoichiometry of different layered sodium cobalt oxides. Chem Mater 26: 5288 -5296.	Lei Y, Li X, Liu L, Ceder G (2014) Synthesis and stoichiometry of different layered sodium cobalt oxides. Chem Mater 26: 5288 -5296. https://doi.org/10.1021/cm5021788	Lei Y, Li X, Liu L, Ceder G (2014) Synthesis and stoichiometry of different layered sodium cobalt oxides. Chem Mater 26: 5288 -5296.
34	20	20	370	#/texts/344	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 126.82, 215.41, 27.36]	Li G, Azuma H, Tohda M (2002) LiMnPO4 as the cathode for lithium batteries. Electrochem Solid-State Lett 5:A135 -A137. https://doi.org/10.1149/1.1475195	Li G, Azuma H, Tohda M (2002) LiMnPO4 as the cathode for lithium batteries. Electrochem Solid-State Lett 5:A135 -A137.	Li G, Azuma H, Tohda M (2002) LiMnPO4 as the cathode for lithium batteries. Electrochem Solid-State Lett 5:A135 -A137. https://doi.org/10.1149/1.1475195	Li G, Azuma H, Tohda M (2002) LiMnPO4 as the cathode for lithium batteries. Electrochem Solid-State Lett 5:A135 -A137.
34	21	21	371	#/texts/345	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 157.49, 215.46, 27.46]	Li J, Li J, Luo J, Wang L, He X (2011) Recent advances in the LiFeO2-based materials for Li-ion batteries. Int J Electrochem Sci 6:1550 -1561	Li J, Li J, Luo J, Wang L, He X (2011) Recent advances in the LiFeO2-based materials for Li-ion batteries. Int J Electrochem Sci 6:1550 -1561	Li J, Li J, Luo J, Wang L, He X (2011) Recent advances in the LiFeO2-based materials for Li-ion batteries. Int J Electrochem Sci 6:1550 -1561	Li J, Li J, Luo J, Wang L, He X (2011) Recent advances in the LiFeO2-based materials for Li-ion batteries. Int J Electrochem Sci 6:1550 -1561
34	22	22	372	#/texts/346	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 188.16, 215.54, 37.34]	Li BZ, Wang Y, Xue L, Li XP, Li WS (2013) Acetylene blackembedded LiMn0.8Fe0.2PO4/C composite as cathode for lithium ion battery. J Power Sources 232:12 -16. https://doi. org/10.1016/j.jpowsour.2013.01.019	Li BZ, Wang Y, Xue L, Li XP, Li WS (2013) Acetylene blackembedded LiMn0.8Fe0.2PO4/C composite as cathode for lithium ion battery. J Power Sources 232:12 -16. org/10.1016/j.jpowsour.2013.01.019	Li BZ, Wang Y, Xue L, Li XP, Li WS (2013) Acetylene blackembedded LiMn0.8Fe0.2PO4/C composite as cathode for lithium ion battery. J Power Sources 232:12 -16. https://doi. org/10.1016/j.jpowsour.2013.01.019	Li BZ, Wang Y, Xue L, Li XP, Li WS (2013) Acetylene blackembedded LiMn0.8Fe0.2PO4/C composite as cathode for lithium ion battery. J Power Sources 232:12 -16. org/10.1016/j.jpowsour.2013.01.019
34	23	23	373	#/texts/347	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 228.86, 215.46, 37.34]	Li C, Miao X, Chu W, Wu P, Tong DG (2015a) Hollow amorphous NaFePO4 nanospheres as a high-capacity and high-rate cathode for sodium-ion batteries. J Mater Chem A 3:8265 -8271. https://doi.org/10.1039/C5TA01191D	Li C, Miao X, Chu W, Wu P, Tong DG (2015a) Hollow amorphous NaFePO4 nanospheres as a high-capacity and high-rate cathode for sodium-ion batteries. J Mater Chem A 3:8265 -8271.	Li C, Miao X, Chu W, Wu P, Tong DG (2015a) Hollow amorphous NaFePO4 nanospheres as a high-capacity and high-rate cathode for sodium-ion batteries. J Mater Chem A 3:8265 -8271. https://doi.org/10.1039/C5TA01191D	Li C, Miao X, Chu W, Wu P, Tong DG (2015a) Hollow amorphous NaFePO4 nanospheres as a high-capacity and high-rate cathode for sodium-ion batteries. J Mater Chem A 3:8265 -8271.
34	24	24	374	#/texts/348	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 269.51, 215.51, 27.36]	Li J, Ma C, Chi M, Liang C, Dudney NJ (2015b) Solid Electrolyte: the Key for High-Voltage Lithium Batteries. Adv Energy Mater 5:1401408. https://doi.org/10.1002/aenm.201401408	Li J, Ma C, Chi M, Liang C, Dudney NJ (2015b) Solid Electrolyte: the Key for High-Voltage Lithium Batteries. Adv Energy Mater 5:1401408.	Li J, Ma C, Chi M, Liang C, Dudney NJ (2015b) Solid Electrolyte: the Key for High-Voltage Lithium Batteries. Adv Energy Mater 5:1401408. https://doi.org/10.1002/aenm.201401408	Li J, Ma C, Chi M, Liang C, Dudney NJ (2015b) Solid Electrolyte: the Key for High-Voltage Lithium Batteries. Adv Energy Mater 5:1401408.
34	25	25	375	#/texts/349	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 300.18, 215.44, 37.4]	Li Y et al (2015c) Air-Stable Copper-Based P2-Na7/9Cu2/9Fe1/ 9Mn2/3O2 as a New Positive Electrode Material for SodiumIon Batteries. Adv Sci 2:1500031. https://doi.org/10.1002 /advs.201500031	Li Y et al (2015c) Air-Stable Copper-Based P2-Na7/9Cu2/9Fe1/ 9Mn2/3O2 as a New Positive Electrode Material for SodiumIon Batteries. Adv Sci 2:1500031.	Li Y et al (2015c) Air-Stable Copper-Based P2-Na7/9Cu2/9Fe1/ 9Mn2/3O2 as a New Positive Electrode Material for SodiumIon Batteries. Adv Sci 2:1500031. https://doi.org/10.1002 /advs.201500031	Li Y et al (2015c) Air-Stable Copper-Based P2-Na7/9Cu2/9Fe1/ 9Mn2/3O2 as a New Positive Electrode Material for SodiumIon Batteries. Adv Sci 2:1500031.
34	26	26	376	#/texts/350	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 340.88, 215.5, 47.37]	Li D et al (2016) Soft-template construction of threedimensionally ordered inverse opal structure from Li2FeSiO4/C composite nanofibers for high-rate lithiumion batteries. Nanoscale 8:12202 -12214. https://doi. org/10.1…	Li D et al (2016) Soft-template construction of threedimensionally ordered inverse opal structure from Li2FeSiO4/C composite nanofibers for high-rate lithiumion batteries. Nanoscale 8:12202 -12214. org/10.1039/C5NR07783D	Li D et al (2016) Soft-template construction of threedimensionally ordered inverse opal structure from Li2FeSiO4/C composite nanofibers for high-rate lithiumion batteries. Nanoscale 8:12202 -12214. https://doi. org/10.1039/C5NR07783D	Li D et al (2016) Soft-template construction of threedimensionally ordered inverse opal structure from Li2FeSiO4/C composite nanofibers for high-rate lithiumion batteries. Nanoscale 8:12202 -12214. org/10.1039/C5NR07783D
34	27	27	377	#/texts/351	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 391.57, 215.47, 37.34]	Lin X, Hou X, Wu X, Wang S, Gao M, Yang Y (2014) Exploiting Na2MnPO4F as a high-capacity and well-reversible cathode material for Na-ion batteries. RSC Adv 4:40985 -40993. https://doi.org/10.1039/C4RA05336B	Lin X, Hou X, Wu X, Wang S, Gao M, Yang Y (2014) Exploiting Na2MnPO4F as a high-capacity and well-reversible cathode material for Na-ion batteries. RSC Adv 4:40985 -40993.	Lin X, Hou X, Wu X, Wang S, Gao M, Yang Y (2014) Exploiting Na2MnPO4F as a high-capacity and well-reversible cathode material for Na-ion batteries. RSC Adv 4:40985 -40993. https://doi.org/10.1039/C4RA05336B	Lin X, Hou X, Wu X, Wang S, Gao M, Yang Y (2014) Exploiting Na2MnPO4F as a high-capacity and well-reversible cathode material for Na-ion batteries. RSC Adv 4:40985 -40993.
34	28	28	378	#/texts/352	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 432.21, 215.5, 47.37]	Liu Q, Mao D, Chang C, Huang F (2007) Phase conversion and morphology evolution during hydrothermal preparation of orthorhombic LiMnO2 nanorods for lithium ion battery application. J Power Sources 173:538 -544. https://…	Liu Q, Mao D, Chang C, Huang F (2007) Phase conversion and morphology evolution during hydrothermal preparation of orthorhombic LiMnO2 nanorods for lithium ion battery application. J Power Sources 173:538 -544. org/10.1…	Liu Q, Mao D, Chang C, Huang F (2007) Phase conversion and morphology evolution during hydrothermal preparation of orthorhombic LiMnO2 nanorods for lithium ion battery application. J Power Sources 173:538 -544. https://doi. org/10.1016/j.jpowsour.2007.03.077	Liu Q, Mao D, Chang C, Huang F (2007) Phase conversion and morphology evolution during hydrothermal preparation of orthorhombic LiMnO2 nanorods for lithium ion battery application. J Power Sources 173:538 -544. org/10.1016/j.jpowsour.2007.03.077
34	29	29	379	#/texts/353	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 482.9, 215.45, 37.4]	Liu D et al (2012a) Synthesis of pure phase disordered LiMn1.45Cr0.1Ni0.45O4 by a post-annealing method. J Power Sources 217:400 -406. https://doi.org/10.1016/j. jpowsour.2012.06.063	Liu D et al (2012a) Synthesis of pure phase disordered LiMn1.45Cr0.1Ni0.45O4 by a post-annealing method. J Power Sources 217:400 -406.	Liu D et al (2012a) Synthesis of pure phase disordered LiMn1.45Cr0.1Ni0.45O4 by a post-annealing method. J Power Sources 217:400 -406. https://doi.org/10.1016/j. jpowsour.2012.06.063	Liu D et al (2012a) Synthesis of pure phase disordered LiMn1.45Cr0.1Ni0.45O4 by a post-annealing method. J Power Sources 217:400 -406.
34	30	30	380	#/texts/354	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.92, 523.6, 215.5, 37.34]	Liu Y et al (2012b) Porous amorphous FePO4 nanoparticles connected by single-wall carbon nanotubes for sodium ion battery cathodes. Nano Lett 12:5664 -5668. https://doi. org/10.1021/nl302819f	Liu Y et al (2012b) Porous amorphous FePO4 nanoparticles connected by single-wall carbon nanotubes for sodium ion battery cathodes. Nano Lett 12:5664 -5668. org/10.1021/nl302819f	Liu Y et al (2012b) Porous amorphous FePO4 nanoparticles connected by single-wall carbon nanotubes for sodium ion battery cathodes. Nano Lett 12:5664 -5668. https://doi. org/10.1021/nl302819f	Liu Y et al (2012b) Porous amorphous FePO4 nanoparticles connected by single-wall carbon nanotubes for sodium ion battery cathodes. Nano Lett 12:5664 -5668. org/10.1021/nl302819f
34	31	31	381	#/texts/355	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.92, 564.25, 215.51, 37.4]	Liu X, Wang X, Iyo A, Yu H, Li D, Zhou H (2014) High stable post-spinel NaMn2O4 cathode of sodium ion battery. J Mater Chem A 2:14822 -14826. https://doi.org/10.1039/C4 TA03349C	Liu X, Wang X, Iyo A, Yu H, Li D, Zhou H (2014) High stable post-spinel NaMn2O4 cathode of sodium ion battery. J Mater Chem A 2:14822 -14826.	Liu X, Wang X, Iyo A, Yu H, Li D, Zhou H (2014) High stable post-spinel NaMn2O4 cathode of sodium ion battery. J Mater Chem A 2:14822 -14826. https://doi.org/10.1039/C4 TA03349C	Liu X, Wang X, Iyo A, Yu H, Li D, Zhou H (2014) High stable post-spinel NaMn2O4 cathode of sodium ion battery. J Mater Chem A 2:14822 -14826.
34	32	32	382	#/texts/356	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 604.96, 215.44, 37.34]	Liu L et al (2015a) High-Performance P2-Type Na2/3(Mn1/2Fe1/ 4Co1/4)O2 Cathode Material with Superior Rate Capability for Na-Ion Batteries. Adv Energy Mater 5:1500944. https://doi.org/10.1002/aenm.201500944	Liu L et al (2015a) High-Performance P2-Type Na2/3(Mn1/2Fe1/ 4Co1/4)O2 Cathode Material with Superior Rate Capability for Na-Ion Batteries. Adv Energy Mater 5:1500944.	Liu L et al (2015a) High-Performance P2-Type Na2/3(Mn1/2Fe1/ 4Co1/4)O2 Cathode Material with Superior Rate Capability for Na-Ion Batteries. Adv Energy Mater 5:1500944. https://doi.org/10.1002/aenm.201500944	Liu L et al (2015a) High-Performance P2-Type Na2/3(Mn1/2Fe1/ 4Co1/4)O2 Cathode Material with Superior Rate Capability for Na-Ion Batteries. Adv Energy Mater 5:1500944.
34	33	33	383	#/texts/357	list_item	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p34:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 645.65, 215.44, 17.33]	Liu Y, Xu S, Zhang S, Zhang J, Fan J, Zhou Y (2015b) Direct growth of FePO4/reduced graphene oxide nanosheet	Liu Y, Xu S, Zhang S, Zhang J, Fan J, Zhou Y (2015b) Direct growth of FePO4/reduced graphene oxide nanosheet	Liu Y, Xu S, Zhang S, Zhang J, Fan J, Zhou Y (2015b) Direct growth of FePO4/reduced graphene oxide nanosheet	Liu Y, Xu S, Zhang S, Zhang J, Fan J, Zhou Y (2015b) Direct growth of FePO4/reduced graphene oxide nanosheet
35	1	1	384	#/texts/358	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_1_of_2	1	2	p35:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
35	3	2	385	#/texts/360	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[63.72, 55.45, 198.6, 17.43]	composites for the sodium-ion battery. J Mater Chem A 3: 5501 -5508. https://doi.org/10.1039/C5TA00199D	composites for the sodium-ion battery. J Mater Chem A 3: 5501 -5508.	composites for the sodium-ion battery. J Mater Chem A 3: 5501 -5508. https://doi.org/10.1039/C5TA00199D	composites for the sodium-ion battery. J Mater Chem A 3: 5501 -5508.
35	4	3	386	#/texts/361	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 75.46, 215.49, 37.34]	Liu C, Neale ZG, Cao G (2016a) Understanding electrochemical potentials of cathode materials in rechargeable batteries. Mater Today 19:109 -123. https://doi.org/10.1016/j. mattod.2015.10.009	Liu C, Neale ZG, Cao G (2016a) Understanding electrochemical potentials of cathode materials in rechargeable batteries. Mater Today 19:109 -123.	Liu C, Neale ZG, Cao G (2016a) Understanding electrochemical potentials of cathode materials in rechargeable batteries. Mater Today 19:109 -123. https://doi.org/10.1016/j. mattod.2015.10.009	Liu C, Neale ZG, Cao G (2016a) Understanding electrochemical potentials of cathode materials in rechargeable batteries. Mater Today 19:109 -123.
35	5	4	387	#/texts/362	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 115.48, 215.53, 47.37]	Liu H, Ji P, Han X (2016b) Rheological phase synthesis of nanosized α -LiFeO2 with higher crystallinity degree for cathode material of lithium-ion batteries. Mater Chem Phys 1 8 3 : 1 5 2 -1 5 7 . h t t p s : / / d o i …	Liu H, Ji P, Han X (2016b) Rheological phase synthesis of nanosized α -LiFeO2 with higher crystallinity degree for cathode material of lithium-ion batteries. Mater Chem Phys 1 8 3 : 1 5 2 -1 5 7 . h t t p s : / / d o i …	Liu H, Ji P, Han X (2016b) Rheological phase synthesis of nanosized α -LiFeO2 with higher crystallinity degree for cathode material of lithium-ion batteries. Mater Chem Phys 1 8 3 : 1 5 2 -1 5 7 . h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . matchemphys.2016.08.013	Liu H, Ji P, Han X (2016b) Rheological phase synthesis of nanosized α -LiFeO2 with higher crystallinity degree for cathode material of lithium-ion batteries. Mater Chem Phys 1 8 3 : 1 5 2 -1 5 7 . h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . matchemphys.2016.08.013
35	6	5	388	#/texts/363	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 165.48, 215.45, 37.34]	Liu Q et al (2017a) Multiangular rod-shaped Na0.44MnO2 as cathode materials with high rate and long life for sodiumion batteries. ACS Appl Mater Interfaces 9:3644 -3652. https://doi.org/10.1021/acsami.6b13830	Liu Q et al (2017a) Multiangular rod-shaped Na0.44MnO2 as cathode materials with high rate and long life for sodiumion batteries. ACS Appl Mater Interfaces 9:3644 -3652.	Liu Q et al (2017a) Multiangular rod-shaped Na0.44MnO2 as cathode materials with high rate and long life for sodiumion batteries. ACS Appl Mater Interfaces 9:3644 -3652. https://doi.org/10.1021/acsami.6b13830	Liu Q et al (2017a) Multiangular rod-shaped Na0.44MnO2 as cathode materials with high rate and long life for sodiumion batteries. ACS Appl Mater Interfaces 9:3644 -3652.
35	7	6	389	#/texts/364	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 205.5, 215.47, 47.37]	Liu Y, Zhou Y, Zhang J, Xia Y, Chen T, Zhang S (2017b) Monoclinic phase Na3Fe2(PO4)3: synthesis, structure, and electrochemical performance as cathode material in sodiumion batteries. ACS Sustain Chem Eng 5:1306 -1314. …	Liu Y, Zhou Y, Zhang J, Xia Y, Chen T, Zhang S (2017b) Monoclinic phase Na3Fe2(PO4)3: synthesis, structure, and electrochemical performance as cathode material in sodiumion batteries. ACS Sustain Chem Eng 5:1306 -1314.	Liu Y, Zhou Y, Zhang J, Xia Y, Chen T, Zhang S (2017b) Monoclinic phase Na3Fe2(PO4)3: synthesis, structure, and electrochemical performance as cathode material in sodiumion batteries. ACS Sustain Chem Eng 5:1306 -1314. https://doi.org/10.1021/acssuschemeng.6b01536	Liu Y, Zhou Y, Zhang J, Xia Y, Chen T, Zhang S (2017b) Monoclinic phase Na3Fe2(PO4)3: synthesis, structure, and electrochemical performance as cathode material in sodiumion batteries. ACS Sustain Chem Eng 5:1306 -1314.
35	8	7	390	#/texts/365	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 255.5, 215.45, 27.36]	Lu J, Yamada A (2016) Ionic and electronic transport in alluaudite Na2+2xFe2 -x(SO4)3. ChemElectroChem 3:902 -905. https://doi.org/10.1002/celc.201500535	Lu J, Yamada A (2016) Ionic and electronic transport in alluaudite Na2+2xFe2 -x(SO4)3. ChemElectroChem 3:902 -905.	Lu J, Yamada A (2016) Ionic and electronic transport in alluaudite Na2+2xFe2 -x(SO4)3. ChemElectroChem 3:902 -905. https://doi.org/10.1002/celc.201500535	Lu J, Yamada A (2016) Ionic and electronic transport in alluaudite Na2+2xFe2 -x(SO4)3. ChemElectroChem 3:902 -905.
35	9	8	391	#/texts/366	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 285.48, 215.51, 37.4]	Lu Y, Wang L, Cheng J, Goodenough JB (2012) Prussian blue: a new framework of electrode materials for sodium batteries. Chem Commun 48:6544 -6546. https://doi.org/10.1039/C2 CC31777J	Lu Y, Wang L, Cheng J, Goodenough JB (2012) Prussian blue: a new framework of electrode materials for sodium batteries. Chem Commun 48:6544 -6546.	Lu Y, Wang L, Cheng J, Goodenough JB (2012) Prussian blue: a new framework of electrode materials for sodium batteries. Chem Commun 48:6544 -6546. https://doi.org/10.1039/C2 CC31777J	Lu Y, Wang L, Cheng J, Goodenough JB (2012) Prussian blue: a new framework of electrode materials for sodium batteries. Chem Commun 48:6544 -6546.
35	10	9	392	#/texts/367	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 325.5, 215.46, 37.34]	Lu J, Chen Z, Ma Z, Pan F, Curtiss LA, Amine K (2016) The role of nanotechnology in the development of battery materials for electric vehicles. Nat Nanotechnol 11:1031. https://doi. org/10.1038/nnano.2016.207	Lu J, Chen Z, Ma Z, Pan F, Curtiss LA, Amine K (2016) The role of nanotechnology in the development of battery materials for electric vehicles. Nat Nanotechnol 11:1031. org/10.1038/nnano.2016.207	Lu J, Chen Z, Ma Z, Pan F, Curtiss LA, Amine K (2016) The role of nanotechnology in the development of battery materials for electric vehicles. Nat Nanotechnol 11:1031. https://doi. org/10.1038/nnano.2016.207	Lu J, Chen Z, Ma Z, Pan F, Curtiss LA, Amine K (2016) The role of nanotechnology in the development of battery materials for electric vehicles. Nat Nanotechnol 11:1031. org/10.1038/nnano.2016.207
35	11	10	393	#/texts/368	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 365.52, 215.54, 37.34]	Luo C, Langrock A, Fan X, Liang Y, Wang C (2017) P2-type transition metal oxides for high performance Na-ion battery cathodes. J Mater Chem A 5:18214 -18220. https://doi. org/10.1039/C7TA04515H	Luo C, Langrock A, Fan X, Liang Y, Wang C (2017) P2-type transition metal oxides for high performance Na-ion battery cathodes. J Mater Chem A 5:18214 -18220. org/10.1039/C7TA04515H	Luo C, Langrock A, Fan X, Liang Y, Wang C (2017) P2-type transition metal oxides for high performance Na-ion battery cathodes. J Mater Chem A 5:18214 -18220. https://doi. org/10.1039/C7TA04515H	Luo C, Langrock A, Fan X, Liang Y, Wang C (2017) P2-type transition metal oxides for high performance Na-ion battery cathodes. J Mater Chem A 5:18214 -18220. org/10.1039/C7TA04515H
35	12	11	394	#/texts/369	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 405.54, 215.45, 27.36]	Ma X, Kang B, Ceder G (2010) High rate micron-sized ordered LiNi0.5Mn1.5O4. J Electrochem Soc 157:A925 -A931. https://doi.org/10.1149/1.3439678	Ma X, Kang B, Ceder G (2010) High rate micron-sized ordered LiNi0.5Mn1.5O4. J Electrochem Soc 157:A925 -A931.	Ma X, Kang B, Ceder G (2010) High rate micron-sized ordered LiNi0.5Mn1.5O4. J Electrochem Soc 157:A925 -A931. https://doi.org/10.1149/1.3439678	Ma X, Kang B, Ceder G (2010) High rate micron-sized ordered LiNi0.5Mn1.5O4. J Electrochem Soc 157:A925 -A931.
35	13	12	395	#/texts/370	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 435.53, 215.52, 27.36]	Ma X, Chen H, Ceder G (2011) Electrochemical properties of monoclinic NaMnO2. J Electrochem Soc 158:A1307 -A1312. https://doi.org/10.1149/2.035112jes	Ma X, Chen H, Ceder G (2011) Electrochemical properties of monoclinic NaMnO2. J Electrochem Soc 158:A1307 -A1312.	Ma X, Chen H, Ceder G (2011) Electrochemical properties of monoclinic NaMnO2. J Electrochem Soc 158:A1307 -A1312. https://doi.org/10.1149/2.035112jes	Ma X, Chen H, Ceder G (2011) Electrochemical properties of monoclinic NaMnO2. J Electrochem Soc 158:A1307 -A1312.
35	14	13	396	#/texts/371	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.8, 465.52, 215.49, 37.4]	MacNeil DD, Lu Z, Chen Z, Dahn JR (2002) A comparison of the electrode/electrolyte reaction at elevated temperatures for various Li-ion battery cathodes. J Power Sources 108:8 -14. https://doi.org/10.1016/S0378-7753(01)…	MacNeil DD, Lu Z, Chen Z, Dahn JR (2002) A comparison of the electrode/electrolyte reaction at elevated temperatures for various Li-ion battery cathodes. J Power Sources 108:8 -14.	MacNeil DD, Lu Z, Chen Z, Dahn JR (2002) A comparison of the electrode/electrolyte reaction at elevated temperatures for various Li-ion battery cathodes. J Power Sources 108:8 -14. https://doi.org/10.1016/S0378-7753(01)01013-8	MacNeil DD, Lu Z, Chen Z, Dahn JR (2002) A comparison of the electrode/electrolyte reaction at elevated temperatures for various Li-ion battery cathodes. J Power Sources 108:8 -14.
35	15	14	397	#/texts/372	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.81, 505.54, 215.49, 27.36]	Mahmood N, Hou Y (2014) Electrode nanostructures in lithiumbased Batteries. Adv Sci 1:1400012. https://doi.org/10.1002 /advs.201400012	Mahmood N, Hou Y (2014) Electrode nanostructures in lithiumbased Batteries. Adv Sci 1:1400012.	Mahmood N, Hou Y (2014) Electrode nanostructures in lithiumbased Batteries. Adv Sci 1:1400012. https://doi.org/10.1002 /advs.201400012	Mahmood N, Hou Y (2014) Electrode nanostructures in lithiumbased Batteries. Adv Sci 1:1400012.
35	16	15	398	#/texts/373	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.81, 535.58, 215.51, 37.34]	Manthiram A, Knight JC, Myung S-T, Oh S-M, Sun Y-K (2016) Nickel-Rich and lithium-rich layered oxide cathodes: progress and perspectives. Adv Energy Mater 6:1501010. https://doi.org/10.1002/aenm.201501010	Manthiram A, Knight JC, Myung S-T, Oh S-M, Sun Y-K (2016) Nickel-Rich and lithium-rich layered oxide cathodes: progress and perspectives. Adv Energy Mater 6:1501010.	Manthiram A, Knight JC, Myung S-T, Oh S-M, Sun Y-K (2016) Nickel-Rich and lithium-rich layered oxide cathodes: progress and perspectives. Adv Energy Mater 6:1501010. https://doi.org/10.1002/aenm.201501010	Manthiram A, Knight JC, Myung S-T, Oh S-M, Sun Y-K (2016) Nickel-Rich and lithium-rich layered oxide cathodes: progress and perspectives. Adv Energy Mater 6:1501010.
35	17	16	399	#/texts/374	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.81, 575.54, 215.43, 27.46]	Martha SK et al (2009a) LiMn0.8Fe0.2PO4: an advanced cathode material for rechargeable lithium batteries. Angew Chem Int Ed 48:8559 -8563. https://doi.org/10.1002/anie.200903587	Martha SK et al (2009a) LiMn0.8Fe0.2PO4: an advanced cathode material for rechargeable lithium batteries. Angew Chem Int Ed 48:8559 -8563.	Martha SK et al (2009a) LiMn0.8Fe0.2PO4: an advanced cathode material for rechargeable lithium batteries. Angew Chem Int Ed 48:8559 -8563. https://doi.org/10.1002/anie.200903587	Martha SK et al (2009a) LiMn0.8Fe0.2PO4: an advanced cathode material for rechargeable lithium batteries. Angew Chem Int Ed 48:8559 -8563.
35	18	17	400	#/texts/375	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.82, 605.59, 215.44, 27.46]	Martha SK et al (2009b) LiMnPO4 as an advanced cathode material for rechargeable lithium batteries. J Electrochem Soc 156:A541 -A552. https://doi.org/10.1149/1.3125765	Martha SK et al (2009b) LiMnPO4 as an advanced cathode material for rechargeable lithium batteries. J Electrochem Soc 156:A541 -A552.	Martha SK et al (2009b) LiMnPO4 as an advanced cathode material for rechargeable lithium batteries. J Electrochem Soc 156:A541 -A552. https://doi.org/10.1149/1.3125765	Martha SK et al (2009b) LiMnPO4 as an advanced cathode material for rechargeable lithium batteries. J Electrochem Soc 156:A541 -A552.
35	19	18	401	#/texts/376	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p35:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.83, 635.57, 215.46, 27.45]	Masquelier C, Croguennec L (2013) Polyanionic (Phosphates, Silicates, Sulfates) frameworks as electrode materials for rechargeable Li (or Na) batteries. Chem Rev 113:6552 -6591	Masquelier C, Croguennec L (2013) Polyanionic (Phosphates, Silicates, Sulfates) frameworks as electrode materials for rechargeable Li (or Na) batteries. Chem Rev 113:6552 -6591	Masquelier C, Croguennec L (2013) Polyanionic (Phosphates, Silicates, Sulfates) frameworks as electrode materials for rechargeable Li (or Na) batteries. Chem Rev 113:6552 -6591	Masquelier C, Croguennec L (2013) Polyanionic (Phosphates, Silicates, Sulfates) frameworks as electrode materials for rechargeable Li (or Na) batteries. Chem Rev 113:6552 -6591
35	2	19	402	#/texts/359	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p35:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 67.04, 7.44]	Page 35 of 40 160	Page 35 of 40 160	Page 35 of 40 160	Page 35 of 40 160
35	20	20	403	#/texts/377	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 55.45, 215.45, 47.37]	Matsumura T, Kanno R, Inaba Y, Kawamoto Y, Takano M (2002) Synthesis, structure, and electrochemical properties of a new cathode material, LiFeO2 , with a tunnel structure. J Electrochem Soc 149:A1509 -A1513. https://do…	Matsumura T, Kanno R, Inaba Y, Kawamoto Y, Takano M (2002) Synthesis, structure, and electrochemical properties of a new cathode material, LiFeO2 , with a tunnel structure. J Electrochem Soc 149:A1509 -A1513. org/10.114…	Matsumura T, Kanno R, Inaba Y, Kawamoto Y, Takano M (2002) Synthesis, structure, and electrochemical properties of a new cathode material, LiFeO2 , with a tunnel structure. J Electrochem Soc 149:A1509 -A1513. https://doi. org/10.1149/1.1516769	Matsumura T, Kanno R, Inaba Y, Kawamoto Y, Takano M (2002) Synthesis, structure, and electrochemical properties of a new cathode material, LiFeO2 , with a tunnel structure. J Electrochem Soc 149:A1509 -A1513. org/10.1149/1.1516769
35	21	21	404	#/texts/378	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 106.18, 215.5, 37.44]	Meethong N, Kao Y-H, Tang M, Huang H-Y, Carter WC, Chiang Y-M (2008) Electrochemically induced phase transformation in nanoscale olivines Li1 -xMPO4 (M = Fe, Mn). Chem Mater 20:6189 -6198. https://doi.org/10.1021/cm8017…	Meethong N, Kao Y-H, Tang M, Huang H-Y, Carter WC, Chiang Y-M (2008) Electrochemically induced phase transformation in nanoscale olivines Li1 -xMPO4 (M = Fe, Mn). Chem Mater 20:6189 -6198.	Meethong N, Kao Y-H, Tang M, Huang H-Y, Carter WC, Chiang Y-M (2008) Electrochemically induced phase transformation in nanoscale olivines Li1 -xMPO4 (M = Fe, Mn). Chem Mater 20:6189 -6198. https://doi.org/10.1021/cm801722f	Meethong N, Kao Y-H, Tang M, Huang H-Y, Carter WC, Chiang Y-M (2008) Electrochemically induced phase transformation in nanoscale olivines Li1 -xMPO4 (M = Fe, Mn). Chem Mater 20:6189 -6198.
35	22	22	405	#/texts/379	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 146.88, 215.51, 47.37]	Meng Y, Yu T, Zhang S, Deng C (2016) Top-down synthesis of muscle-inspired alluaudite Na2+2xFe2-x(SO4)3/SWNT spindle as a high-rate and high-potential cathode for sodium-ion batteries. J Mater Chem A 4:1624 -1631. https…	Meng Y, Yu T, Zhang S, Deng C (2016) Top-down synthesis of muscle-inspired alluaudite Na2+2xFe2-x(SO4)3/SWNT spindle as a high-rate and high-potential cathode for sodium-ion batteries. J Mater Chem A 4:1624 -1631.	Meng Y, Yu T, Zhang S, Deng C (2016) Top-down synthesis of muscle-inspired alluaudite Na2+2xFe2-x(SO4)3/SWNT spindle as a high-rate and high-potential cathode for sodium-ion batteries. J Mater Chem A 4:1624 -1631. https://doi.org/10.1039/C5TA07696J	Meng Y, Yu T, Zhang S, Deng C (2016) Top-down synthesis of muscle-inspired alluaudite Na2+2xFe2-x(SO4)3/SWNT spindle as a high-rate and high-potential cathode for sodium-ion batteries. J Mater Chem A 4:1624 -1631.
35	23	23	406	#/texts/380	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 197.62, 215.55, 37.44]	Mizushima K, Jones PC, Wiseman PJ, Goodenough JB (1980) Lixcoo2 (oless-thanxless-than-or-equal-to1) -a new cathode material for batteries of high-energy density. Mater Res Bull 15:783 -789. https://doi.org/10.1016/0025-…	Mizushima K, Jones PC, Wiseman PJ, Goodenough JB (1980) Lixcoo2 (oless-thanxless-than-or-equal-to1) -a new cathode material for batteries of high-energy density. Mater Res Bull 15:783 -789.	Mizushima K, Jones PC, Wiseman PJ, Goodenough JB (1980) Lixcoo2 (oless-thanxless-than-or-equal-to1) -a new cathode material for batteries of high-energy density. Mater Res Bull 15:783 -789. https://doi.org/10.1016/0025-5408(80)90012-4	Mizushima K, Jones PC, Wiseman PJ, Goodenough JB (1980) Lixcoo2 (oless-thanxless-than-or-equal-to1) -a new cathode material for batteries of high-energy density. Mater Res Bull 15:783 -789.
35	24	24	407	#/texts/381	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 238.37, 215.48, 47.31]	Mohanty D et al (2013) Structural transformation of a lithium-rich Li1.2Co0.1Mn0.55Ni0.15O2 cathode during high voltage cycling resolved by in situ X-ray diffraction. J Power Sources 229:239 -248. https://doi.org/10.101…	Mohanty D et al (2013) Structural transformation of a lithium-rich Li1.2Co0.1Mn0.55Ni0.15O2 cathode during high voltage cycling resolved by in situ X-ray diffraction. J Power Sources 229:239 -248.	Mohanty D et al (2013) Structural transformation of a lithium-rich Li1.2Co0.1Mn0.55Ni0.15O2 cathode during high voltage cycling resolved by in situ X-ray diffraction. J Power Sources 229:239 -248. https://doi.org/10.1016/j. jpowsour.2012.11.144	Mohanty D et al (2013) Structural transformation of a lithium-rich Li1.2Co0.1Mn0.55Ni0.15O2 cathode during high voltage cycling resolved by in situ X-ray diffraction. J Power Sources 229:239 -248.
35	25	25	408	#/texts/382	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 287.16, 215.44, 29.25]	Morales J, Santos-Peña J (2007) Highly electroactive nanosized α -LiFeO2. Electrochem Commun 9:2116 -2120. https://doi. org/10.1016/j.elecom.2007.06.013	Morales J, Santos-Peña J (2007) Highly electroactive nanosized α -LiFeO2. Electrochem Commun 9:2116 -2120. org/10.1016/j.elecom.2007.06.013	Morales J, Santos-Peña J (2007) Highly electroactive nanosized α -LiFeO2. Electrochem Commun 9:2116 -2120. https://doi. org/10.1016/j.elecom.2007.06.013	Morales J, Santos-Peña J (2007) Highly electroactive nanosized α -LiFeO2. Electrochem Commun 9:2116 -2120. org/10.1016/j.elecom.2007.06.013
35	26	26	409	#/texts/383	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 319.77, 215.53, 37.4]	Moreau P, Guyomard D, Gaubicher J, Boucher F (2010) Structure and stability of sodium intercalated phases in olivine FePO4. Chem Mater 22:4126 -4128. https://doi.org/10.1021 /cm101377h	Moreau P, Guyomard D, Gaubicher J, Boucher F (2010) Structure and stability of sodium intercalated phases in olivine FePO4. Chem Mater 22:4126 -4128.	Moreau P, Guyomard D, Gaubicher J, Boucher F (2010) Structure and stability of sodium intercalated phases in olivine FePO4. Chem Mater 22:4126 -4128. https://doi.org/10.1021 /cm101377h	Moreau P, Guyomard D, Gaubicher J, Boucher F (2010) Structure and stability of sodium intercalated phases in olivine FePO4. Chem Mater 22:4126 -4128.
35	27	27	410	#/texts/384	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 360.53, 215.52, 47.41]	Mortemard de Boisse B, Carlier D, Guignard M, Bourgeois L, Delmas C (2014) P2-NaxMn1/2Fe1/2O2 phase used as positive electrode in na batteries: structural changes induced by the electrochemical (De)intercalation process…	Mortemard de Boisse B, Carlier D, Guignard M, Bourgeois L, Delmas C (2014) P2-NaxMn1/2Fe1/2O2 phase used as positive electrode in na batteries: structural changes induced by the electrochemical (De)intercalation process…	Mortemard de Boisse B, Carlier D, Guignard M, Bourgeois L, Delmas C (2014) P2-NaxMn1/2Fe1/2O2 phase used as positive electrode in na batteries: structural changes induced by the electrochemical (De)intercalation process. Inorg Chem 53:11197 -11205. https://doi.org/10.1021/ic5017802	Mortemard de Boisse B, Carlier D, Guignard M, Bourgeois L, Delmas C (2014) P2-NaxMn1/2Fe1/2O2 phase used as positive electrode in na batteries: structural changes induced by the electrochemical (De)intercalation process. Inorg Chem 53:11197 -11205.
35	28	28	411	#/texts/385	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 411.26, 215.44, 37.44]	Muraliganth T, Stroukoff KR, Manthiram A (2010) Microwavesolvothermal synthesis of nanostructured Li2MSiO4/C (M = Mn and Fe) cathodes for lithium-ion batteries. Chem Mater 22:5754 -5761. https://doi.org/10.1021/cm102058n	Muraliganth T, Stroukoff KR, Manthiram A (2010) Microwavesolvothermal synthesis of nanostructured Li2MSiO4/C (M = Mn and Fe) cathodes for lithium-ion batteries. Chem Mater 22:5754 -5761.	Muraliganth T, Stroukoff KR, Manthiram A (2010) Microwavesolvothermal synthesis of nanostructured Li2MSiO4/C (M = Mn and Fe) cathodes for lithium-ion batteries. Chem Mater 22:5754 -5761. https://doi.org/10.1021/cm102058n	Muraliganth T, Stroukoff KR, Manthiram A (2010) Microwavesolvothermal synthesis of nanostructured Li2MSiO4/C (M = Mn and Fe) cathodes for lithium-ion batteries. Chem Mater 22:5754 -5761.
35	29	29	412	#/texts/386	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 451.96, 215.53, 37.34]	Myung S-T, Amine K, Sun Y-K (2015) Nanostructured cathode materials for rechargeable lithium batteries. J Power Sources 2 8 3 : 2 1 9 -2 3 6 . h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . jpowsour.2015.02.119	Myung S-T, Amine K, Sun Y-K (2015) Nanostructured cathode materials for rechargeable lithium batteries. J Power Sources 2 8 3 : 2 1 9 -2 3 6 . h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . jpowsour.2015.02.119	Myung S-T, Amine K, Sun Y-K (2015) Nanostructured cathode materials for rechargeable lithium batteries. J Power Sources 2 8 3 : 2 1 9 -2 3 6 . h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . jpowsour.2015.02.119	Myung S-T, Amine K, Sun Y-K (2015) Nanostructured cathode materials for rechargeable lithium batteries. J Power Sources 2 8 3 : 2 1 9 -2 3 6 . h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . jpowsour.2015.02.119
35	30	30	413	#/texts/387	list_item	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 492.66, 215.48, 27.36]	Naoaki Y, Shinichi K (2014) Recent research progress on iron- and manganese-based positive electrode materials for rechargeable sodium batteries. Sci Technol Adv Mater 15:043501	Naoaki Y, Shinichi K (2014) Recent research progress on iron- and manganese-based positive electrode materials for rechargeable sodium batteries. Sci Technol Adv Mater 15:043501	Naoaki Y, Shinichi K (2014) Recent research progress on iron- and manganese-based positive electrode materials for rechargeable sodium batteries. Sci Technol Adv Mater 15:043501	Naoaki Y, Shinichi K (2014) Recent research progress on iron- and manganese-based positive electrode materials for rechargeable sodium batteries. Sci Technol Adv Mater 15:043501
35	31	31	414	#/texts/388	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 523.38, 215.42, 37.4]	Naoi K et al (2016) Ultrafast charge-discharge characteristics of a nanosized core-shell structured LiFePO4 material for hybrid supercapacitor applications. Energy Environ Sci 9:2143 -2151. https://doi.org/10.1039/C6EE0…	Naoi K et al (2016) Ultrafast charge-discharge characteristics of a nanosized core-shell structured LiFePO4 material for hybrid supercapacitor applications. Energy Environ Sci 9:2143 -2151.	Naoi K et al (2016) Ultrafast charge-discharge characteristics of a nanosized core-shell structured LiFePO4 material for hybrid supercapacitor applications. Energy Environ Sci 9:2143 -2151. https://doi.org/10.1039/C6EE00829A	Naoi K et al (2016) Ultrafast charge-discharge characteristics of a nanosized core-shell structured LiFePO4 material for hybrid supercapacitor applications. Energy Environ Sci 9:2143 -2151.
35	32	32	415	#/texts/389	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 564.14, 215.45, 27.46]	Ni J, Jiang Y , Bi X, Li L, Lu J (2017) Lithium iron orthosilicate cathode: progress and perspectives. ACS Energy Lett 2: 1771 -1781. https://doi.org/10.1021/acsenergylett.7b00452	Ni J, Jiang Y , Bi X, Li L, Lu J (2017) Lithium iron orthosilicate cathode: progress and perspectives. ACS Energy Lett 2: 1771 -1781.	Ni J, Jiang Y , Bi X, Li L, Lu J (2017) Lithium iron orthosilicate cathode: progress and perspectives. ACS Energy Lett 2: 1771 -1781. https://doi.org/10.1021/acsenergylett.7b00452	Ni J, Jiang Y , Bi X, Li L, Lu J (2017) Lithium iron orthosilicate cathode: progress and perspectives. ACS Energy Lett 2: 1771 -1781.
35	33	33	416	#/texts/390	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 593.33, 215.46, 28.89]	Nie ZX et al (2010) First principles study of Jahn -Teller effects in LixMnPO4. Solid State Commun 150:40 -44. https://doi. org/10.1016/j.ssc.2009.10.010	Nie ZX et al (2010) First principles study of Jahn -Teller effects in LixMnPO4. Solid State Commun 150:40 -44. org/10.1016/j.ssc.2009.10.010	Nie ZX et al (2010) First principles study of Jahn -Teller effects in LixMnPO4. Solid State Commun 150:40 -44. https://doi. org/10.1016/j.ssc.2009.10.010	Nie ZX et al (2010) First principles study of Jahn -Teller effects in LixMnPO4. Solid State Commun 150:40 -44. org/10.1016/j.ssc.2009.10.010
35	34	34	417	#/texts/391	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p35:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 625.58, 215.51, 37.43]	Nishimura S-i, Nakamura M, Natsui R, Yamada A (2010) New lithium iron pyrophosphate as 3.5 V class cathode material for lithium ion battery. J Am Chem Soc 132:13596 -13597. https://doi.org/10.1021/ja106297a	Nishimura S-i, Nakamura M, Natsui R, Yamada A (2010) New lithium iron pyrophosphate as 3.5 V class cathode material for lithium ion battery. J Am Chem Soc 132:13596 -13597.	Nishimura S-i, Nakamura M, Natsui R, Yamada A (2010) New lithium iron pyrophosphate as 3.5 V class cathode material for lithium ion battery. J Am Chem Soc 132:13596 -13597. https://doi.org/10.1021/ja106297a	Nishimura S-i, Nakamura M, Natsui R, Yamada A (2010) New lithium iron pyrophosphate as 3.5 V class cathode material for lithium ion battery. J Am Chem Soc 132:13596 -13597.
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36	4	3	420	#/texts/395	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 55.45, 215.41, 27.46]	Nitta Y, Okamura K, Haraguchi K, Kobayashi S, Ohata A (1995) Crystal structure study of LiNi1 -xMnxO2. J Power Sources 54:511 -515. https://doi.org/10.1016/0378-7753(94)02137-R	Nitta Y, Okamura K, Haraguchi K, Kobayashi S, Ohata A (1995) Crystal structure study of LiNi1 -xMnxO2. J Power Sources 54:511 -515.	Nitta Y, Okamura K, Haraguchi K, Kobayashi S, Ohata A (1995) Crystal structure study of LiNi1 -xMnxO2. J Power Sources 54:511 -515. https://doi.org/10.1016/0378-7753(94)02137-R	Nitta Y, Okamura K, Haraguchi K, Kobayashi S, Ohata A (1995) Crystal structure study of LiNi1 -xMnxO2. J Power Sources 54:511 -515.
36	5	4	421	#/texts/396	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 86.12, 215.54, 27.36]	Nitta N, Wu F, Lee JT, Yushin G (2015) Li-ion battery materials: present and future. Mater Today 18:252 -264. https://doi. org/10.1016/j.mattod.2014.10.040	Nitta N, Wu F, Lee JT, Yushin G (2015) Li-ion battery materials: present and future. Mater Today 18:252 -264. org/10.1016/j.mattod.2014.10.040	Nitta N, Wu F, Lee JT, Yushin G (2015) Li-ion battery materials: present and future. Mater Today 18:252 -264. https://doi. org/10.1016/j.mattod.2014.10.040	Nitta N, Wu F, Lee JT, Yushin G (2015) Li-ion battery materials: present and future. Mater Today 18:252 -264. org/10.1016/j.mattod.2014.10.040
36	6	5	422	#/texts/397	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 116.8, 215.42, 27.46]	Norberg NS, Kostecki R (2012) The degradation mechanism of a composite LiMnPO4 cathode. J Electrochem Soc 159: A1431 -A1434. https://doi.org/10.1149/2.018209jes	Norberg NS, Kostecki R (2012) The degradation mechanism of a composite LiMnPO4 cathode. J Electrochem Soc 159: A1431 -A1434.	Norberg NS, Kostecki R (2012) The degradation mechanism of a composite LiMnPO4 cathode. J Electrochem Soc 159: A1431 -A1434. https://doi.org/10.1149/2.018209jes	Norberg NS, Kostecki R (2012) The degradation mechanism of a composite LiMnPO4 cathode. J Electrochem Soc 159: A1431 -A1434.
36	7	6	423	#/texts/398	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 147.47, 215.49, 37.4]	Nytén A, Abouimrane A, Armand M, Gustafsson T, Thomas JO (2005) Electrochemical performance of Li2FeSiO4 as a new Li-battery cathode material. Electrochem Commun 7:156 -160. https://doi.org/10.1016/j.elecom.2004.11.008	Nytén A, Abouimrane A, Armand M, Gustafsson T, Thomas JO (2005) Electrochemical performance of Li2FeSiO4 as a new Li-battery cathode material. Electrochem Commun 7:156 -160.	Nytén A, Abouimrane A, Armand M, Gustafsson T, Thomas JO (2005) Electrochemical performance of Li2FeSiO4 as a new Li-battery cathode material. Electrochem Commun 7:156 -160. https://doi.org/10.1016/j.elecom.2004.11.008	Nytén A, Abouimrane A, Armand M, Gustafsson T, Thomas JO (2005) Electrochemical performance of Li2FeSiO4 as a new Li-battery cathode material. Electrochem Commun 7:156 -160.
36	8	7	424	#/texts/399	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 188.17, 215.5, 37.34]	Oh S-M, Oh S-W, Yoon C-S, Scrosati B, Amine K, Sun Y-K (2010) High-performance carbon-LiMnPO4 nanocomposite cathode for lithium batteries. Adv Funct Mater 20:3260 -3265. https://doi.org/10.1002/adfm.201000469	Oh S-M, Oh S-W, Yoon C-S, Scrosati B, Amine K, Sun Y-K (2010) High-performance carbon-LiMnPO4 nanocomposite cathode for lithium batteries. Adv Funct Mater 20:3260 -3265.	Oh S-M, Oh S-W, Yoon C-S, Scrosati B, Amine K, Sun Y-K (2010) High-performance carbon-LiMnPO4 nanocomposite cathode for lithium batteries. Adv Funct Mater 20:3260 -3265. https://doi.org/10.1002/adfm.201000469	Oh S-M, Oh S-W, Yoon C-S, Scrosati B, Amine K, Sun Y-K (2010) High-performance carbon-LiMnPO4 nanocomposite cathode for lithium batteries. Adv Funct Mater 20:3260 -3265.
36	9	8	425	#/texts/400	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 228.87, 215.5, 37.34]	Oh S-M, Myung S-T, Hassoun J, Scrosati B, Sun Y-K (2012) Reversible NaFePO4 electrode for sodium secondary batteries. Electrochem Commun 22:149 -152. https://doi. org/10.1016/j.elecom.2012.06.014	Oh S-M, Myung S-T, Hassoun J, Scrosati B, Sun Y-K (2012) Reversible NaFePO4 electrode for sodium secondary batteries. Electrochem Commun 22:149 -152. org/10.1016/j.elecom.2012.06.014	Oh S-M, Myung S-T, Hassoun J, Scrosati B, Sun Y-K (2012) Reversible NaFePO4 electrode for sodium secondary batteries. Electrochem Commun 22:149 -152. https://doi. org/10.1016/j.elecom.2012.06.014	Oh S-M, Myung S-T, Hassoun J, Scrosati B, Sun Y-K (2012) Reversible NaFePO4 electrode for sodium secondary batteries. Electrochem Commun 22:149 -152. org/10.1016/j.elecom.2012.06.014
36	10	9	426	#/texts/401	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 269.52, 215.48, 37.34]	Ohzuku T, Ueda A, Nagayama M (1993) Electrochemistry and structural chemistry of LiNiO2 (R3 ̅ m) for 4 volt secondary lithium cells. J Electrochem Soc 140:1862 -1870. https://doi. org/10.1149/1.2220730	Ohzuku T, Ueda A, Nagayama M (1993) Electrochemistry and structural chemistry of LiNiO2 (R3 ̅ m) for 4 volt secondary lithium cells. J Electrochem Soc 140:1862 -1870. org/10.1149/1.2220730	Ohzuku T, Ueda A, Nagayama M (1993) Electrochemistry and structural chemistry of LiNiO2 (R3 ̅ m) for 4 volt secondary lithium cells. J Electrochem Soc 140:1862 -1870. https://doi. org/10.1149/1.2220730	Ohzuku T, Ueda A, Nagayama M (1993) Electrochemistry and structural chemistry of LiNiO2 (R3 ̅ m) for 4 volt secondary lithium cells. J Electrochem Soc 140:1862 -1870. org/10.1149/1.2220730
36	11	10	427	#/texts/402	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 310.22, 215.52, 47.31]	Ohzuku T, Takeda S, Iwanaga M (1999) Solid-state redox potentials for Li [Me1/2Mn3/2] O4 (Me: 3d-transition metal) having spinel-framework structures: a series of 5 volt materials for advanced lithium-ion batteries. J P…	Ohzuku T, Takeda S, Iwanaga M (1999) Solid-state redox potentials for Li [Me1/2Mn3/2] O4 (Me: 3d-transition metal) having spinel-framework structures: a series of 5 volt materials for advanced lithium-ion batteries. J P…	Ohzuku T, Takeda S, Iwanaga M (1999) Solid-state redox potentials for Li [Me1/2Mn3/2] O4 (Me: 3d-transition metal) having spinel-framework structures: a series of 5 volt materials for advanced lithium-ion batteries. J Power Sources 81:90 -94	Ohzuku T, Takeda S, Iwanaga M (1999) Solid-state redox potentials for Li [Me1/2Mn3/2] O4 (Me: 3d-transition metal) having spinel-framework structures: a series of 5 volt materials for advanced lithium-ion batteries. J Power Sources 81:90 -94
36	12	11	428	#/texts/403	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 360.89, 215.43, 27.36]	Okada S, Takahashi Y, Kiyabu T, Doi T, Yamaki J-I, Nishida T (2006) Layered transition metal oxides as cathodes for sodium secondary battery meeting abstracts MA2006-02:201	Okada S, Takahashi Y, Kiyabu T, Doi T, Yamaki J-I, Nishida T (2006) Layered transition metal oxides as cathodes for sodium secondary battery meeting abstracts MA2006-02:201	Okada S, Takahashi Y, Kiyabu T, Doi T, Yamaki J-I, Nishida T (2006) Layered transition metal oxides as cathodes for sodium secondary battery meeting abstracts MA2006-02:201	Okada S, Takahashi Y, Kiyabu T, Doi T, Yamaki J-I, Nishida T (2006) Layered transition metal oxides as cathodes for sodium secondary battery meeting abstracts MA2006-02:201
36	13	12	429	#/texts/404	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 391.56, 215.52, 37.34]	Ong SP, Chevrier VL, Ceder G (2011) Comparison of small polaron migration and phase separation in olivine LiMnPO${}_{4}$ and LiFePO${}_{4}$ using hybrid density functional theory. Phys Rev B 83:075112	Ong SP, Chevrier VL, Ceder G (2011) Comparison of small polaron migration and phase separation in olivine LiMnPO${}_{4}$ and LiFePO${}_{4}$ using hybrid density functional theory. Phys Rev B 83:075112	Ong SP, Chevrier VL, Ceder G (2011) Comparison of small polaron migration and phase separation in olivine LiMnPO${}_{4}$ and LiFePO${}_{4}$ using hybrid density functional theory. Phys Rev B 83:075112	Ong SP, Chevrier VL, Ceder G (2011) Comparison of small polaron migration and phase separation in olivine LiMnPO${}_{4}$ and LiFePO${}_{4}$ using hybrid density functional theory. Phys Rev B 83:075112
36	14	13	430	#/texts/405	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 432.21, 215.52, 37.5]	Oyama G, Pecher O, Griffith KJ, Nishimura S-i, Pigliapochi R, Grey CP, Yamada A (2016) Sodium intercalation mechanism of 3.8 V class alluaudite sodium iron sulfate. Chem Mater 28: 5321 -5328. https://doi.org/10.1021/acs…	Oyama G, Pecher O, Griffith KJ, Nishimura S-i, Pigliapochi R, Grey CP, Yamada A (2016) Sodium intercalation mechanism of 3.8 V class alluaudite sodium iron sulfate. Chem Mater 28: 5321 -5328.	Oyama G, Pecher O, Griffith KJ, Nishimura S-i, Pigliapochi R, Grey CP, Yamada A (2016) Sodium intercalation mechanism of 3.8 V class alluaudite sodium iron sulfate. Chem Mater 28: 5321 -5328. https://doi.org/10.1021/acs.chemmater.6b01091	Oyama G, Pecher O, Griffith KJ, Nishimura S-i, Pigliapochi R, Grey CP, Yamada A (2016) Sodium intercalation mechanism of 3.8 V class alluaudite sodium iron sulfate. Chem Mater 28: 5321 -5328.
36	15	14	431	#/texts/406	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 472.92, 215.43, 47.37]	Palomares V, Serras P, Villaluenga I, Hueso KB, CarreteroGonzalez J, Rojo T (2012) Na-ion batteries, recent advances and present challenges to become low cost energy storage systems. Energy Environ Sci 5:5884 -5901. htt…	Palomares V, Serras P, Villaluenga I, Hueso KB, CarreteroGonzalez J, Rojo T (2012) Na-ion batteries, recent advances and present challenges to become low cost energy storage systems. Energy Environ Sci 5:5884 -5901. org…	Palomares V, Serras P, Villaluenga I, Hueso KB, CarreteroGonzalez J, Rojo T (2012) Na-ion batteries, recent advances and present challenges to become low cost energy storage systems. Energy Environ Sci 5:5884 -5901. https://doi. org/10.1039/c2ee02781j	Palomares V, Serras P, Villaluenga I, Hueso KB, CarreteroGonzalez J, Rojo T (2012) Na-ion batteries, recent advances and present challenges to become low cost energy storage systems. Energy Environ Sci 5:5884 -5901. org/10.1039/c2ee02781j
36	16	15	432	#/texts/407	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 523.6, 215.43, 27.46]	Paolella A et al (2014) Etched colloidal LiFePO4 nanoplatelets toward high-rate capable Li-Ion battery electrodes. Nano Lett 14:6828 -6835. https://doi.org/10.1021/nl504093w	Paolella A et al (2014) Etched colloidal LiFePO4 nanoplatelets toward high-rate capable Li-Ion battery electrodes. Nano Lett 14:6828 -6835.	Paolella A et al (2014) Etched colloidal LiFePO4 nanoplatelets toward high-rate capable Li-Ion battery electrodes. Nano Lett 14:6828 -6835. https://doi.org/10.1021/nl504093w	Paolella A et al (2014) Etched colloidal LiFePO4 nanoplatelets toward high-rate capable Li-Ion battery electrodes. Nano Lett 14:6828 -6835.
36	17	16	433	#/texts/408	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 554.27, 215.46, 37.34]	Parant J-P, Olazcuaga R, Devalette M, Fouassier C, Hagenmuller P (1971) Sur quelques nouvelles phases de formule NaxMnO2 (x ⩽ 1). J Solid State Chem 3:1 -11. https://doi. org/10.1016/0022-4596(71)90001-6	Parant J-P, Olazcuaga R, Devalette M, Fouassier C, Hagenmuller P (1971) Sur quelques nouvelles phases de formule NaxMnO2 (x ⩽ 1). J Solid State Chem 3:1 -11. org/10.1016/0022-4596(71)90001-6	Parant J-P, Olazcuaga R, Devalette M, Fouassier C, Hagenmuller P (1971) Sur quelques nouvelles phases de formule NaxMnO2 (x ⩽ 1). J Solid State Chem 3:1 -11. https://doi. org/10.1016/0022-4596(71)90001-6	Parant J-P, Olazcuaga R, Devalette M, Fouassier C, Hagenmuller P (1971) Sur quelques nouvelles phases de formule NaxMnO2 (x ⩽ 1). J Solid State Chem 3:1 -11. org/10.1016/0022-4596(71)90001-6
36	18	17	434	#/texts/409	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 594.97, 215.42, 37.34]	Park CS et al (2013) Anomalous manganese activation of a pyrophosphate cathode in sodium ion batteries: a combined experimental and theoretical study. J Am Chem Soc 135:2787 -2792. https://doi.org/10.1021/ja312044k	Park CS et al (2013) Anomalous manganese activation of a pyrophosphate cathode in sodium ion batteries: a combined experimental and theoretical study. J Am Chem Soc 135:2787 -2792.	Park CS et al (2013) Anomalous manganese activation of a pyrophosphate cathode in sodium ion batteries: a combined experimental and theoretical study. J Am Chem Soc 135:2787 -2792. https://doi.org/10.1021/ja312044k	Park CS et al (2013) Anomalous manganese activation of a pyrophosphate cathode in sodium ion batteries: a combined experimental and theoretical study. J Am Chem Soc 135:2787 -2792.
36	19	18	435	#/texts/410	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p36:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 635.62, 215.54, 27.9]	Paulsen JM, Dahn JR (1999) Studies of the layered manganese bronzes, Na2/3[Mn1 -xMx]O2 with M=Co, Ni, Li, and Li2/ 3[Mn1 -xMx]O2 prepared by ion-exchange. Solid State	Paulsen JM, Dahn JR (1999) Studies of the layered manganese bronzes, Na2/3[Mn1 -xMx]O2 with M=Co, Ni, Li, and Li2/ 3[Mn1 -xMx]O2 prepared by ion-exchange. Solid State	Paulsen JM, Dahn JR (1999) Studies of the layered manganese bronzes, Na2/3[Mn1 -xMx]O2 with M=Co, Ni, Li, and Li2/ 3[Mn1 -xMx]O2 prepared by ion-exchange. Solid State	Paulsen JM, Dahn JR (1999) Studies of the layered manganese bronzes, Na2/3[Mn1 -xMx]O2 with M=Co, Ni, Li, and Li2/ 3[Mn1 -xMx]O2 prepared by ion-exchange. Solid State
36	3	19	436	#/texts/394	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p36:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
36	20	20	437	#/texts/411	list_item	page_margin_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p36:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[301.83, 53.92, 198.45, 18.86]	Ionics 126:3 -24. https://doi.org/10.1016/S0167-2738(99 )00147-2	Ionics 126:3 -24. )00147-2	Ionics 126:3 -24. https://doi.org/10.1016/S0167-2738(99 )00147-2	Ionics 126:3 -24. )00147-2
36	21	21	438	#/texts/412	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 75.46, 215.46, 37.34]	Pei Y et al (2016) Chelate-induced formation of Li2MnSiO4 nanorods as a high capacity cathode material for Li-ion batteries. J Mater Chem A 4:9447 -9454. https://doi. org/10.1039/C6TA01269H	Pei Y et al (2016) Chelate-induced formation of Li2MnSiO4 nanorods as a high capacity cathode material for Li-ion batteries. J Mater Chem A 4:9447 -9454. org/10.1039/C6TA01269H	Pei Y et al (2016) Chelate-induced formation of Li2MnSiO4 nanorods as a high capacity cathode material for Li-ion batteries. J Mater Chem A 4:9447 -9454. https://doi. org/10.1039/C6TA01269H	Pei Y et al (2016) Chelate-induced formation of Li2MnSiO4 nanorods as a high capacity cathode material for Li-ion batteries. J Mater Chem A 4:9447 -9454. org/10.1039/C6TA01269H
36	22	22	439	#/texts/413	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 115.48, 215.45, 37.34]	Pivko M, Bele M, Tchernychova E, Logar NZ, Dominko R, Gaberscek M (2012) Synthesis of nanometric LiMnPO4 via a two-step technique. Chem Mater 24:1041 -1047. https://doi.org/10.1021/cm203095d	Pivko M, Bele M, Tchernychova E, Logar NZ, Dominko R, Gaberscek M (2012) Synthesis of nanometric LiMnPO4 via a two-step technique. Chem Mater 24:1041 -1047.	Pivko M, Bele M, Tchernychova E, Logar NZ, Dominko R, Gaberscek M (2012) Synthesis of nanometric LiMnPO4 via a two-step technique. Chem Mater 24:1041 -1047. https://doi.org/10.1021/cm203095d	Pivko M, Bele M, Tchernychova E, Logar NZ, Dominko R, Gaberscek M (2012) Synthesis of nanometric LiMnPO4 via a two-step technique. Chem Mater 24:1041 -1047.
36	23	23	440	#/texts/414	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 155.5, 215.52, 47.31]	Qin Z, Zhou X, Xia Y, Tang C, Liu Z (2012) Morphology controlled synthesis and modification of high-performance LiMnPO4 cathode materials for Li-ion batteries. J Mater Chem 22:21144 -21153. https://doi.org/10.1039/C2 JM…	Qin Z, Zhou X, Xia Y, Tang C, Liu Z (2012) Morphology controlled synthesis and modification of high-performance LiMnPO4 cathode materials for Li-ion batteries. J Mater Chem 22:21144 -21153.	Qin Z, Zhou X, Xia Y, Tang C, Liu Z (2012) Morphology controlled synthesis and modification of high-performance LiMnPO4 cathode materials for Li-ion batteries. J Mater Chem 22:21144 -21153. https://doi.org/10.1039/C2 JM30821E	Qin Z, Zhou X, Xia Y, Tang C, Liu Z (2012) Morphology controlled synthesis and modification of high-performance LiMnPO4 cathode materials for Li-ion batteries. J Mater Chem 22:21144 -21153.
36	24	24	441	#/texts/415	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 205.5, 215.52, 47.37]	Rahman MM, Wang J-Z, Hassan MF, Chou S, Chen Z, Liu HK (2011) Nanocrystalline porous α -LiFeO2-C composite-an environmentally friendly cathode for the lithium-ion battery. Energ Environ Sci 4:952 -957. https://doi.org/1…	Rahman MM, Wang J-Z, Hassan MF, Chou S, Chen Z, Liu HK (2011) Nanocrystalline porous α -LiFeO2-C composite-an environmentally friendly cathode for the lithium-ion battery. Energ Environ Sci 4:952 -957.	Rahman MM, Wang J-Z, Hassan MF, Chou S, Chen Z, Liu HK (2011) Nanocrystalline porous α -LiFeO2-C composite-an environmentally friendly cathode for the lithium-ion battery. Energ Environ Sci 4:952 -957. https://doi.org/10.1039/C0 EE00527D	Rahman MM, Wang J-Z, Hassan MF, Chou S, Chen Z, Liu HK (2011) Nanocrystalline porous α -LiFeO2-C composite-an environmentally friendly cathode for the lithium-ion battery. Energ Environ Sci 4:952 -957.
36	25	25	442	#/texts/416	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 255.5, 215.42, 37.34]	Ramar V, Balaya P (2016) The effect of polymorphism on the lithium storage performance of Li2MnSiO4. J Power Sources 3 0 6 : 5 5 2 -5 5 8 . h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . jpowsour.2015.12.033	Ramar V, Balaya P (2016) The effect of polymorphism on the lithium storage performance of Li2MnSiO4. J Power Sources 3 0 6 : 5 5 2 -5 5 8 . h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . jpowsour.2015.12.033	Ramar V, Balaya P (2016) The effect of polymorphism on the lithium storage performance of Li2MnSiO4. J Power Sources 3 0 6 : 5 5 2 -5 5 8 . h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . jpowsour.2015.12.033	Ramar V, Balaya P (2016) The effect of polymorphism on the lithium storage performance of Li2MnSiO4. J Power Sources 3 0 6 : 5 5 2 -5 5 8 . h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . jpowsour.2015.12.033
36	26	26	443	#/texts/417	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 295.52, 215.41, 37.34]	Rangappa D, Murukanahally KD, Tomai T, Unemoto A, Honma I (2012) Ultrathin nanosheets of Li2MSiO4 (M = Fe, Mn) as high-capacity Li-Ion battery electrode. Nano Lett 12:1146 -1151. https://doi.org/10.1021/nl202681b	Rangappa D, Murukanahally KD, Tomai T, Unemoto A, Honma I (2012) Ultrathin nanosheets of Li2MSiO4 (M = Fe, Mn) as high-capacity Li-Ion battery electrode. Nano Lett 12:1146 -1151.	Rangappa D, Murukanahally KD, Tomai T, Unemoto A, Honma I (2012) Ultrathin nanosheets of Li2MSiO4 (M = Fe, Mn) as high-capacity Li-Ion battery electrode. Nano Lett 12:1146 -1151. https://doi.org/10.1021/nl202681b	Rangappa D, Murukanahally KD, Tomai T, Unemoto A, Honma I (2012) Ultrathin nanosheets of Li2MSiO4 (M = Fe, Mn) as high-capacity Li-Ion battery electrode. Nano Lett 12:1146 -1151.
36	27	27	444	#/texts/418	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 335.54, 215.44, 27.46]	Ravnsbæk DB et al (2014) Extended solid solutions and coherent transformations in nanoscale olivine cathodes. Nano Lett 14: 1484 -1491. https://doi.org/10.1021/nl404679t	Ravnsbæk DB et al (2014) Extended solid solutions and coherent transformations in nanoscale olivine cathodes. Nano Lett 14: 1484 -1491.	Ravnsbæk DB et al (2014) Extended solid solutions and coherent transformations in nanoscale olivine cathodes. Nano Lett 14: 1484 -1491. https://doi.org/10.1021/nl404679t	Ravnsbæk DB et al (2014) Extended solid solutions and coherent transformations in nanoscale olivine cathodes. Nano Lett 14: 1484 -1491.
36	28	28	445	#/texts/419	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 365.52, 215.44, 37.34]	Ravnsbæk DB et al (2016) Engineering the transformation strain in LiMnyFe1 -yPO4 olivines for ultrahigh rate battery cathodes. Nano Lett 16:2375 -2380. https://doi.org/10.1021/acs. nanolett.5b05146	Ravnsbæk DB et al (2016) Engineering the transformation strain in LiMnyFe1 -yPO4 olivines for ultrahigh rate battery cathodes. Nano Lett 16:2375 -2380.	Ravnsbæk DB et al (2016) Engineering the transformation strain in LiMnyFe1 -yPO4 olivines for ultrahigh rate battery cathodes. Nano Lett 16:2375 -2380. https://doi.org/10.1021/acs. nanolett.5b05146	Ravnsbæk DB et al (2016) Engineering the transformation strain in LiMnyFe1 -yPO4 olivines for ultrahigh rate battery cathodes. Nano Lett 16:2375 -2380.
36	29	29	446	#/texts/420	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 405.54, 215.42, 27.36]	Rossen E, Jones CDW, Dahn JR (1992) Structure and electrochemistry of LixMnyNi1 -yO2. Solid State Ionics 57:311 -318. https://doi.org/10.1016/0167-2738(92)90164-K	Rossen E, Jones CDW, Dahn JR (1992) Structure and electrochemistry of LixMnyNi1 -yO2. Solid State Ionics 57:311 -318.	Rossen E, Jones CDW, Dahn JR (1992) Structure and electrochemistry of LixMnyNi1 -yO2. Solid State Ionics 57:311 -318. https://doi.org/10.1016/0167-2738(92)90164-K	Rossen E, Jones CDW, Dahn JR (1992) Structure and electrochemistry of LixMnyNi1 -yO2. Solid State Ionics 57:311 -318.
36	30	30	447	#/texts/421	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 435.53, 215.51, 47.37]	Rossouw MH, Liles DC, Thackeray MM (1993) Synthesis and structural characterization of a novel layered lithium manganese oxide, Li0.36Mn0.91O2, and its lithiated derivative, Li1.09Mn0.91O2. J Solid State Chem 104:464 -4…	Rossouw MH, Liles DC, Thackeray MM (1993) Synthesis and structural characterization of a novel layered lithium manganese oxide, Li0.36Mn0.91O2, and its lithiated derivative, Li1.09Mn0.91O2. J Solid State Chem 104:464 -4…	Rossouw MH, Liles DC, Thackeray MM (1993) Synthesis and structural characterization of a novel layered lithium manganese oxide, Li0.36Mn0.91O2, and its lithiated derivative, Li1.09Mn0.91O2. J Solid State Chem 104:464 -466. https://doi.org/10.1006/jssc.1993.1182	Rossouw MH, Liles DC, Thackeray MM (1993) Synthesis and structural characterization of a novel layered lithium manganese oxide, Li0.36Mn0.91O2, and its lithiated derivative, Li1.09Mn0.91O2. J Solid State Chem 104:464 -466.
36	31	31	448	#/texts/422	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 485.53, 215.5, 37.4]	Sakurai Y, Arai H, Okada S, Yamaki J-i (1997) Low temperature synthesis and electrochemical characteristics of LiFeO2 cathodes. J Power Sources 68:711 -715. https://doi.org/10.1016 /S0378-7753(96)02579-7	Sakurai Y, Arai H, Okada S, Yamaki J-i (1997) Low temperature synthesis and electrochemical characteristics of LiFeO2 cathodes. J Power Sources 68:711 -715.	Sakurai Y, Arai H, Okada S, Yamaki J-i (1997) Low temperature synthesis and electrochemical characteristics of LiFeO2 cathodes. J Power Sources 68:711 -715. https://doi.org/10.1016 /S0378-7753(96)02579-7	Sakurai Y, Arai H, Okada S, Yamaki J-i (1997) Low temperature synthesis and electrochemical characteristics of LiFeO2 cathodes. J Power Sources 68:711 -715.
36	32	32	449	#/texts/423	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 525.55, 215.45, 37.4]	Sauvage F, Laffont L, Tarascon JM, Baudrin E (2007) Study of the insertion/deinsertion mechanism of sodium into Na0.44MnO2. Inorg Chem 46:3289 -3294. https://doi. org/10.1021/ic0700250	Sauvage F, Laffont L, Tarascon JM, Baudrin E (2007) Study of the insertion/deinsertion mechanism of sodium into Na0.44MnO2. Inorg Chem 46:3289 -3294. org/10.1021/ic0700250	Sauvage F, Laffont L, Tarascon JM, Baudrin E (2007) Study of the insertion/deinsertion mechanism of sodium into Na0.44MnO2. Inorg Chem 46:3289 -3294. https://doi. org/10.1021/ic0700250	Sauvage F, Laffont L, Tarascon JM, Baudrin E (2007) Study of the insertion/deinsertion mechanism of sodium into Na0.44MnO2. Inorg Chem 46:3289 -3294. org/10.1021/ic0700250
36	33	33	450	#/texts/424	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 565.57, 215.53, 37.34]	Seo D-H, Park Y-U, Kim S-W, Park I, Shakoor RA, Kang K (2011) First-principles study on lithium metal borate cathodes for lithium rechargeable batteries. Phys Rev B 83: 205127	Seo D-H, Park Y-U, Kim S-W, Park I, Shakoor RA, Kang K (2011) First-principles study on lithium metal borate cathodes for lithium rechargeable batteries. Phys Rev B 83: 205127	Seo D-H, Park Y-U, Kim S-W, Park I, Shakoor RA, Kang K (2011) First-principles study on lithium metal borate cathodes for lithium rechargeable batteries. Phys Rev B 83: 205127	Seo D-H, Park Y-U, Kim S-W, Park I, Shakoor RA, Kang K (2011) First-principles study on lithium metal borate cathodes for lithium rechargeable batteries. Phys Rev B 83: 205127
36	34	34	451	#/texts/425	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p36:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 605.59, 215.51, 37.33]	Shaju KM, Subba Rao GV, Chowdari BVR (2002) Performance of layered Li(Ni1/3Co1/3Mn1/3)O2 as cathode for Li-ion batteries. Electrochim Acta 48:145 -151. https://doi.org/10.1016 /S0013-4686(02)00593-5	Shaju KM, Subba Rao GV, Chowdari BVR (2002) Performance of layered Li(Ni1/3Co1/3Mn1/3)O2 as cathode for Li-ion batteries. Electrochim Acta 48:145 -151.	Shaju KM, Subba Rao GV, Chowdari BVR (2002) Performance of layered Li(Ni1/3Co1/3Mn1/3)O2 as cathode for Li-ion batteries. Electrochim Acta 48:145 -151. https://doi.org/10.1016 /S0013-4686(02)00593-5	Shaju KM, Subba Rao GV, Chowdari BVR (2002) Performance of layered Li(Ni1/3Co1/3Mn1/3)O2 as cathode for Li-ion batteries. Electrochim Acta 48:145 -151.
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37	1	1	453	#/texts/427	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_1_of_2	1	2	p37:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.19, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
37	3	2	454	#/texts/429	list_item	page_margin_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_1_of_2	1	2	p37:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[63.72, 53.92, 198.5, 18.86]	sodium-ion battery. Chem Mater 27:6976 -6986. https://doi. org/10.1021/acs.chemmater.5b02142	sodium-ion battery. Chem Mater 27:6976 -6986. org/10.1021/acs.chemmater.5b02142	sodium-ion battery. Chem Mater 27:6976 -6986. https://doi. org/10.1021/acs.chemmater.5b02142	sodium-ion battery. Chem Mater 27:6976 -6986. org/10.1021/acs.chemmater.5b02142
37	4	3	455	#/texts/430	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 75.46, 215.5, 47.37]	Sharma N, Bahri OKA, Han MH, Gonzalo E, Pramudita JC, Rojo T (2016) Comparison of the structural evolution of the O3 and P2 phases of Na2/3Fe2/3Mn1/3O2 during electrochemical cycling. Electrochim Acta 203:189 -197. http…	Sharma N, Bahri OKA, Han MH, Gonzalo E, Pramudita JC, Rojo T (2016) Comparison of the structural evolution of the O3 and P2 phases of Na2/3Fe2/3Mn1/3O2 during electrochemical cycling. Electrochim Acta 203:189 -197. org/…	Sharma N, Bahri OKA, Han MH, Gonzalo E, Pramudita JC, Rojo T (2016) Comparison of the structural evolution of the O3 and P2 phases of Na2/3Fe2/3Mn1/3O2 during electrochemical cycling. Electrochim Acta 203:189 -197. https://doi. org/10.1016/j.electacta.2016.04.008	Sharma N, Bahri OKA, Han MH, Gonzalo E, Pramudita JC, Rojo T (2016) Comparison of the structural evolution of the O3 and P2 phases of Na2/3Fe2/3Mn1/3O2 during electrochemical cycling. Electrochim Acta 203:189 -197. org/10.1016/j.electacta.2016.04.008
37	5	4	456	#/texts/431	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 125.46, 215.45, 47.37]	Shirane T, Kanno R, Kawamoto Y, Takeda Y, Takano M, Kamiyama T, Izumi F (1995) Structure and physical properties of lithium iron oxide, LiFeO2, synthesized by ionic exchange reaction. Solid State Ionics 79:227 -233. htt…	Shirane T, Kanno R, Kawamoto Y, Takeda Y, Takano M, Kamiyama T, Izumi F (1995) Structure and physical properties of lithium iron oxide, LiFeO2, synthesized by ionic exchange reaction. Solid State Ionics 79:227 -233.	Shirane T, Kanno R, Kawamoto Y, Takeda Y, Takano M, Kamiyama T, Izumi F (1995) Structure and physical properties of lithium iron oxide, LiFeO2, synthesized by ionic exchange reaction. Solid State Ionics 79:227 -233. https://doi.org/10.1016/0167-2738(95)00066-F	Shirane T, Kanno R, Kawamoto Y, Takeda Y, Takano M, Kamiyama T, Izumi F (1995) Structure and physical properties of lithium iron oxide, LiFeO2, synthesized by ionic exchange reaction. Solid State Ionics 79:227 -233.
37	6	5	457	#/texts/432	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 175.46, 215.47, 57.41]	Shukla AK, Ramasse QM, Ophus C, Duncan H, Hage F, Chen G (2015) Unravelling structural ambiguities in lithium- and manganese-rich transition metal oxides. Nat Commun 6: 8711. https://doi.org/10.1038/ncomms9711 https://w…	Shukla AK, Ramasse QM, Ophus C, Duncan H, Hage F, Chen G (2015) Unravelling structural ambiguities in lithium- and manganese-rich transition metal oxides. Nat Commun 6: 8711.	Shukla AK, Ramasse QM, Ophus C, Duncan H, Hage F, Chen G (2015) Unravelling structural ambiguities in lithium- and manganese-rich transition metal oxides. Nat Commun 6: 8711. https://doi.org/10.1038/ncomms9711 https://www. nature.com/articles/ncomms9711#supplementaryinformation	Shukla AK, Ramasse QM, Ophus C, Duncan H, Hage F, Chen G (2015) Unravelling structural ambiguities in lithium- and manganese-rich transition metal oxides. Nat Commun 6: 8711.
37	7	6	458	#/texts/433	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 235.49, 215.44, 47.37]	Sigala C, Guyomard D, Verbaere A, Piffard Y , Tournoux M (1995) Positive electrode materials with high operating voltage for lithium batteries: LiCryMn2 -yO4 (0 ≤ y ≤ 1). Solid State Ionics 81:167 -170. https://doi.org/…	Sigala C, Guyomard D, Verbaere A, Piffard Y , Tournoux M (1995) Positive electrode materials with high operating voltage for lithium batteries: LiCryMn2 -yO4 (0 ≤ y ≤ 1). Solid State Ionics 81:167 -170.	Sigala C, Guyomard D, Verbaere A, Piffard Y , Tournoux M (1995) Positive electrode materials with high operating voltage for lithium batteries: LiCryMn2 -yO4 (0 ≤ y ≤ 1). Solid State Ionics 81:167 -170. https://doi.org/10.1016/0167-2738(95 )00163-Z	Sigala C, Guyomard D, Verbaere A, Piffard Y , Tournoux M (1995) Positive electrode materials with high operating voltage for lithium batteries: LiCryMn2 -yO4 (0 ≤ y ≤ 1). Solid State Ionics 81:167 -170.
37	8	7	459	#/texts/434	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.75, 285.48, 215.52, 37.4]	Singh P, Shiva K, Celio H, Goodenough JB (2015) Eldfellite, NaFe(SO4)2: an intercalation cathode host for low-cost Naion batteries. Energ Environ Sci 8:3000 -3005. https://doi. org/10.1039/C5EE02274F	Singh P, Shiva K, Celio H, Goodenough JB (2015) Eldfellite, NaFe(SO4)2: an intercalation cathode host for low-cost Naion batteries. Energ Environ Sci 8:3000 -3005. org/10.1039/C5EE02274F	Singh P, Shiva K, Celio H, Goodenough JB (2015) Eldfellite, NaFe(SO4)2: an intercalation cathode host for low-cost Naion batteries. Energ Environ Sci 8:3000 -3005. https://doi. org/10.1039/C5EE02274F	Singh P, Shiva K, Celio H, Goodenough JB (2015) Eldfellite, NaFe(SO4)2: an intercalation cathode host for low-cost Naion batteries. Energ Environ Sci 8:3000 -3005. org/10.1039/C5EE02274F
37	9	8	460	#/texts/435	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.75, 325.5, 215.5, 27.36]	Slater MD, Kim D, Lee E, Johnson CS (2013) Sodium-ion batteries. Adv Funct Mater 23:947 -958. https://doi.org/10.1002 /adfm.201200691	Slater MD, Kim D, Lee E, Johnson CS (2013) Sodium-ion batteries. Adv Funct Mater 23:947 -958.	Slater MD, Kim D, Lee E, Johnson CS (2013) Sodium-ion batteries. Adv Funct Mater 23:947 -958. https://doi.org/10.1002 /adfm.201200691	Slater MD, Kim D, Lee E, Johnson CS (2013) Sodium-ion batteries. Adv Funct Mater 23:947 -958.
37	10	9	461	#/texts/436	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.76, 355.55, 215.51, 37.34]	Song J et al (2015) Removal of interstitial H2O in hexacyanometallates for a superior cathode of a sodium-ion battery. J Am Chem Soc 137:2658 -2664. https://doi. org/10.1021/ja512383b	Song J et al (2015) Removal of interstitial H2O in hexacyanometallates for a superior cathode of a sodium-ion battery. J Am Chem Soc 137:2658 -2664. org/10.1021/ja512383b	Song J et al (2015) Removal of interstitial H2O in hexacyanometallates for a superior cathode of a sodium-ion battery. J Am Chem Soc 137:2658 -2664. https://doi. org/10.1021/ja512383b	Song J et al (2015) Removal of interstitial H2O in hexacyanometallates for a superior cathode of a sodium-ion battery. J Am Chem Soc 137:2658 -2664. org/10.1021/ja512383b
37	11	10	462	#/texts/437	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.76, 395.51, 215.44, 47.37]	Song HJ, Kim D-S, Kim J-C, Hong S-H, Kim D-W (2017a) An approach to flexible Na-ion batteries with exceptional rate capability and long lifespan using Na2FeP2O7 nanoparticles on porous carbon cloth. J Mater Chem A 5:550…	Song HJ, Kim D-S, Kim J-C, Hong S-H, Kim D-W (2017a) An approach to flexible Na-ion batteries with exceptional rate capability and long lifespan using Na2FeP2O7 nanoparticles on porous carbon cloth. J Mater Chem A 5:550…	Song HJ, Kim D-S, Kim J-C, Hong S-H, Kim D-W (2017a) An approach to flexible Na-ion batteries with exceptional rate capability and long lifespan using Na2FeP2O7 nanoparticles on porous carbon cloth. J Mater Chem A 5:5502 -5510. https://doi.org/10.1039/C7TA00727B	Song HJ, Kim D-S, Kim J-C, Hong S-H, Kim D-W (2017a) An approach to flexible Na-ion batteries with exceptional rate capability and long lifespan using Na2FeP2O7 nanoparticles on porous carbon cloth. J Mater Chem A 5:5502 -5510.
37	12	11	463	#/texts/438	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.76, 445.57, 215.51, 47.31]	Song HJ, Kim K-H, Kim J-C, Hong S-H, Kim D-W (2017b) Superior sodium storage performance of reduced graphene oxide-supported Na3.12Fe2.44(P2O7)2/C nanocomposites. Chem Commun 53:9316 -9319. https://doi.org/10.1039/C7 CC…	Song HJ, Kim K-H, Kim J-C, Hong S-H, Kim D-W (2017b) Superior sodium storage performance of reduced graphene oxide-supported Na3.12Fe2.44(P2O7)2/C nanocomposites. Chem Commun 53:9316 -9319.	Song HJ, Kim K-H, Kim J-C, Hong S-H, Kim D-W (2017b) Superior sodium storage performance of reduced graphene oxide-supported Na3.12Fe2.44(P2O7)2/C nanocomposites. Chem Commun 53:9316 -9319. https://doi.org/10.1039/C7 CC01812F	Song HJ, Kim K-H, Kim J-C, Hong S-H, Kim D-W (2017b) Superior sodium storage performance of reduced graphene oxide-supported Na3.12Fe2.44(P2O7)2/C nanocomposites. Chem Commun 53:9316 -9319.
37	13	12	464	#/texts/439	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.76, 495.56, 215.45, 37.44]	Sun Y, Lu X, Xiao R, Li H, Huang X (2012) Kinetically controlled lithium-staging in delithiated LiFePO4 driven by the Fe center mediated interlayer Li -Li interactions. Chem Mater 24:4693 -4703. https://doi.org/10.1021/…	Sun Y, Lu X, Xiao R, Li H, Huang X (2012) Kinetically controlled lithium-staging in delithiated LiFePO4 driven by the Fe center mediated interlayer Li -Li interactions. Chem Mater 24:4693 -4703.	Sun Y, Lu X, Xiao R, Li H, Huang X (2012) Kinetically controlled lithium-staging in delithiated LiFePO4 driven by the Fe center mediated interlayer Li -Li interactions. Chem Mater 24:4693 -4703. https://doi.org/10.1021/cm3028324	Sun Y, Lu X, Xiao R, Li H, Huang X (2012) Kinetically controlled lithium-staging in delithiated LiFePO4 driven by the Fe center mediated interlayer Li -Li interactions. Chem Mater 24:4693 -4703.
37	14	13	465	#/texts/440	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 535.58, 215.49, 37.34]	Tabuchi M, Ado K, Sakaebe H, Masquelier C, Kageyama H, Nakamura O (1995) Preparation of AFeO2 (A = Li, Na) by hydrothermal method. Solid State Ionics 79:220 -226. https://doi.org/10.1016/0167-2738(95)00065-E	Tabuchi M, Ado K, Sakaebe H, Masquelier C, Kageyama H, Nakamura O (1995) Preparation of AFeO2 (A = Li, Na) by hydrothermal method. Solid State Ionics 79:220 -226.	Tabuchi M, Ado K, Sakaebe H, Masquelier C, Kageyama H, Nakamura O (1995) Preparation of AFeO2 (A = Li, Na) by hydrothermal method. Solid State Ionics 79:220 -226. https://doi.org/10.1016/0167-2738(95)00065-E	Tabuchi M, Ado K, Sakaebe H, Masquelier C, Kageyama H, Nakamura O (1995) Preparation of AFeO2 (A = Li, Na) by hydrothermal method. Solid State Ionics 79:220 -226.
37	15	14	466	#/texts/441	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 575.6, 215.54, 47.31]	Tabuchi M, Nabeshima Y, Takeuchi T, Tatsumi K, Imaizumi J, Nitta Y (2010) Fe content effects on electrochemical properties of Fe-substituted Li2MnO3 positive electrode material. J Power Sources 195:834 -844. https://doi…	Tabuchi M, Nabeshima Y, Takeuchi T, Tatsumi K, Imaizumi J, Nitta Y (2010) Fe content effects on electrochemical properties of Fe-substituted Li2MnO3 positive electrode material. J Power Sources 195:834 -844.	Tabuchi M, Nabeshima Y, Takeuchi T, Tatsumi K, Imaizumi J, Nitta Y (2010) Fe content effects on electrochemical properties of Fe-substituted Li2MnO3 positive electrode material. J Power Sources 195:834 -844. https://doi.org/10.1016/j. jpowsour.2009.08.059	Tabuchi M, Nabeshima Y, Takeuchi T, Tatsumi K, Imaizumi J, Nitta Y (2010) Fe content effects on electrochemical properties of Fe-substituted Li2MnO3 positive electrode material. J Power Sources 195:834 -844.
37	16	15	467	#/texts/442	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p37:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 625.6, 215.52, 37.41]	Takeda Y, Nakahara K, Nishijima M, Imanishi N, Yamamoto O, Takano M, Kanno R (1994) Sodium deintercalation from sodium iron oxide. Mater Res Bull 29:659 -666. https://doi. org/10.1016/0025-5408(94)90122-8	Takeda Y, Nakahara K, Nishijima M, Imanishi N, Yamamoto O, Takano M, Kanno R (1994) Sodium deintercalation from sodium iron oxide. Mater Res Bull 29:659 -666. org/10.1016/0025-5408(94)90122-8	Takeda Y, Nakahara K, Nishijima M, Imanishi N, Yamamoto O, Takano M, Kanno R (1994) Sodium deintercalation from sodium iron oxide. Mater Res Bull 29:659 -666. https://doi. org/10.1016/0025-5408(94)90122-8	Takeda Y, Nakahara K, Nishijima M, Imanishi N, Yamamoto O, Takano M, Kanno R (1994) Sodium deintercalation from sodium iron oxide. Mater Res Bull 29:659 -666. org/10.1016/0025-5408(94)90122-8
37	2	16	468	#/texts/428	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p37:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	True	[433.24, 34.25, 67.04, 7.44]	Page 37 of 40 160	Page 37 of 40 160	Page 37 of 40 160	Page 37 of 40 160
37	17	17	469	#/texts/443	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 55.45, 215.46, 47.37]	Talaie E, Duffort V , Smith HL, Fultz B, Nazar LF (2015) Structure of the high voltage phase of layered P2-Na2/3-z[Mn1/2Fe1/ 2]O2 and the positive effect of Ni substitution on its stability. Energy Environ Sci 8:2512 -2…	Talaie E, Duffort V , Smith HL, Fultz B, Nazar LF (2015) Structure of the high voltage phase of layered P2-Na2/3-z[Mn1/2Fe1/ 2]O2 and the positive effect of Ni substitution on its stability. Energy Environ Sci 8:2512 -2…	Talaie E, Duffort V , Smith HL, Fultz B, Nazar LF (2015) Structure of the high voltage phase of layered P2-Na2/3-z[Mn1/2Fe1/ 2]O2 and the positive effect of Ni substitution on its stability. Energy Environ Sci 8:2512 -2523. https://doi.org/10.1039 /C5EE01365H	Talaie E, Duffort V , Smith HL, Fultz B, Nazar LF (2015) Structure of the high voltage phase of layered P2-Na2/3-z[Mn1/2Fe1/ 2]O2 and the positive effect of Ni substitution on its stability. Energy Environ Sci 8:2512 -2523.
37	18	18	470	#/texts/444	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 106.18, 215.5, 37.34]	Talyosef Y, Markovsky B, Salitra G, Aurbach D, Kim HJ, Choi S (2005) The study of LiNi0.5Mn1.5O4 5-V cathodes for Liion batteries. J Power Sources 146:664 -669. https://doi. org/10.1016/j.jpowsour.2005.03.064	Talyosef Y, Markovsky B, Salitra G, Aurbach D, Kim HJ, Choi S (2005) The study of LiNi0.5Mn1.5O4 5-V cathodes for Liion batteries. J Power Sources 146:664 -669. org/10.1016/j.jpowsour.2005.03.064	Talyosef Y, Markovsky B, Salitra G, Aurbach D, Kim HJ, Choi S (2005) The study of LiNi0.5Mn1.5O4 5-V cathodes for Liion batteries. J Power Sources 146:664 -669. https://doi. org/10.1016/j.jpowsour.2005.03.064	Talyosef Y, Markovsky B, Salitra G, Aurbach D, Kim HJ, Choi S (2005) The study of LiNi0.5Mn1.5O4 5-V cathodes for Liion batteries. J Power Sources 146:664 -669. org/10.1016/j.jpowsour.2005.03.064
37	19	19	471	#/texts/445	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 146.88, 215.42, 27.46]	Tao L et al (2014) Preparation, structure and electrochemistry of LiFeBO3: a cathode material for Li-ion batteries. J Mater Chem A 2:2060 -2070. https://doi.org/10.1039/C3TA13021E	Tao L et al (2014) Preparation, structure and electrochemistry of LiFeBO3: a cathode material for Li-ion batteries. J Mater Chem A 2:2060 -2070.	Tao L et al (2014) Preparation, structure and electrochemistry of LiFeBO3: a cathode material for Li-ion batteries. J Mater Chem A 2:2060 -2070. https://doi.org/10.1039/C3TA13021E	Tao L et al (2014) Preparation, structure and electrochemistry of LiFeBO3: a cathode material for Li-ion batteries. J Mater Chem A 2:2060 -2070.
37	20	20	472	#/texts/446	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 177.6, 215.51, 27.46]	Thackeray MM, David WIF, Bruce PG, Goodenough JB (1983) Lithium insertion into manganese spinels. Mater Res Bull 18: 461 -472. https://doi.org/10.1016/0025-5408(83)90138-1	Thackeray MM, David WIF, Bruce PG, Goodenough JB (1983) Lithium insertion into manganese spinels. Mater Res Bull 18: 461 -472.	Thackeray MM, David WIF, Bruce PG, Goodenough JB (1983) Lithium insertion into manganese spinels. Mater Res Bull 18: 461 -472. https://doi.org/10.1016/0025-5408(83)90138-1	Thackeray MM, David WIF, Bruce PG, Goodenough JB (1983) Lithium insertion into manganese spinels. Mater Res Bull 18: 461 -472.
37	21	21	473	#/texts/447	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 208.33, 215.5, 37.4]	Thackeray MM, Johnson PJ, de Picciotto LA, Bruce PG, Goodenough JB (1984) Electrochemical extraction of lithium from LiMn2O4. Mater Res Bull 19:179 -187. https://doi. org/10.1016/0025-5408(84)90088-6	Thackeray MM, Johnson PJ, de Picciotto LA, Bruce PG, Goodenough JB (1984) Electrochemical extraction of lithium from LiMn2O4. Mater Res Bull 19:179 -187. org/10.1016/0025-5408(84)90088-6	Thackeray MM, Johnson PJ, de Picciotto LA, Bruce PG, Goodenough JB (1984) Electrochemical extraction of lithium from LiMn2O4. Mater Res Bull 19:179 -187. https://doi. org/10.1016/0025-5408(84)90088-6	Thackeray MM, Johnson PJ, de Picciotto LA, Bruce PG, Goodenough JB (1984) Electrochemical extraction of lithium from LiMn2O4. Mater Res Bull 19:179 -187. org/10.1016/0025-5408(84)90088-6
37	22	22	474	#/texts/448	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 249.08, 215.51, 37.44]	Thackeray MM, Kang S-H, Johnson CS, Vaughey JT, Benedek R, Hackney SA (2007) Li2MnO3-stabilized LiMO2 (M = Mn, Ni, Co) electrodes for lithium-ion batteries. J Mater Chem 17: 3112 -3125. https://doi.org/10.1039/B702425H	Thackeray MM, Kang S-H, Johnson CS, Vaughey JT, Benedek R, Hackney SA (2007) Li2MnO3-stabilized LiMO2 (M = Mn, Ni, Co) electrodes for lithium-ion batteries. J Mater Chem 17: 3112 -3125.	Thackeray MM, Kang S-H, Johnson CS, Vaughey JT, Benedek R, Hackney SA (2007) Li2MnO3-stabilized LiMO2 (M = Mn, Ni, Co) electrodes for lithium-ion batteries. J Mater Chem 17: 3112 -3125. https://doi.org/10.1039/B702425H	Thackeray MM, Kang S-H, Johnson CS, Vaughey JT, Benedek R, Hackney SA (2007) Li2MnO3-stabilized LiMO2 (M = Mn, Ni, Co) electrodes for lithium-ion batteries. J Mater Chem 17: 3112 -3125.
37	23	23	475	#/texts/449	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 289.78, 215.49, 37.34]	Thackeray MM, Wolverton C, Isaacs ED (2012) Electrical energy storage for transportation-approaching the limits of, and going beyond, lithium-ion batteries. Energ Environ Sci 5:7854 -7863. https://doi.org/10.1039/C2EE21…	Thackeray MM, Wolverton C, Isaacs ED (2012) Electrical energy storage for transportation-approaching the limits of, and going beyond, lithium-ion batteries. Energ Environ Sci 5:7854 -7863.	Thackeray MM, Wolverton C, Isaacs ED (2012) Electrical energy storage for transportation-approaching the limits of, and going beyond, lithium-ion batteries. Energ Environ Sci 5:7854 -7863. https://doi.org/10.1039/C2EE21892E	Thackeray MM, Wolverton C, Isaacs ED (2012) Electrical energy storage for transportation-approaching the limits of, and going beyond, lithium-ion batteries. Energ Environ Sci 5:7854 -7863.
37	24	24	476	#/texts/450	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 330.48, 215.51, 37.4]	Thorne JS, Dunlap RA, Obrovac MN (2013) Structure and electrochemistry of NaxFexMn1-xO2 (1.0 ≤ x ≤ 0.5) for Na-Ion battery positive electrodes. J Electrochem Soc 160:A361 -A367. https://doi.org/10.1149/2.058302jes	Thorne JS, Dunlap RA, Obrovac MN (2013) Structure and electrochemistry of NaxFexMn1-xO2 (1.0 ≤ x ≤ 0.5) for Na-Ion battery positive electrodes. J Electrochem Soc 160:A361 -A367.	Thorne JS, Dunlap RA, Obrovac MN (2013) Structure and electrochemistry of NaxFexMn1-xO2 (1.0 ≤ x ≤ 0.5) for Na-Ion battery positive electrodes. J Electrochem Soc 160:A361 -A367. https://doi.org/10.1149/2.058302jes	Thorne JS, Dunlap RA, Obrovac MN (2013) Structure and electrochemistry of NaxFexMn1-xO2 (1.0 ≤ x ≤ 0.5) for Na-Ion battery positive electrodes. J Electrochem Soc 160:A361 -A367.
37	25	25	477	#/texts/451	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 371.24, 215.54, 47.47]	Trad K, Carlier D, Croguennec L, Wattiaux A, Ben Amara M, Delmas C (2010a) NaMnFe2(PO4)3 alluaudite phase: synthesis, structure, and electrochemical properties as positive electrode in lithium and sodium batteries. Chem…	Trad K, Carlier D, Croguennec L, Wattiaux A, Ben Amara M, Delmas C (2010a) NaMnFe2(PO4)3 alluaudite phase: synthesis, structure, and electrochemical properties as positive electrode in lithium and sodium batteries. Chem…	Trad K, Carlier D, Croguennec L, Wattiaux A, Ben Amara M, Delmas C (2010a) NaMnFe2(PO4)3 alluaudite phase: synthesis, structure, and electrochemical properties as positive electrode in lithium and sodium batteries. Chem Mater 22: 5554 -5562. https://doi.org/10.1021/cm1015614	Trad K, Carlier D, Croguennec L, Wattiaux A, Ben Amara M, Delmas C (2010a) NaMnFe2(PO4)3 alluaudite phase: synthesis, structure, and electrochemical properties as positive electrode in lithium and sodium batteries. Chem Mater 22: 5554 -5562.
37	26	26	478	#/texts/452	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 421.97, 215.49, 57.35]	Trad K, Carlier D, Croguennec L, Wattiaux A, Lajmi B, Ben Amara M, Delmas C (2010b) A layered iron(III) phosphate phase, Na3Fe3(PO4)4: synthesis, structure, and electrochemical properties as positive electrode in sodium…	Trad K, Carlier D, Croguennec L, Wattiaux A, Lajmi B, Ben Amara M, Delmas C (2010b) A layered iron(III) phosphate phase, Na3Fe3(PO4)4: synthesis, structure, and electrochemical properties as positive electrode in sodium…	Trad K, Carlier D, Croguennec L, Wattiaux A, Lajmi B, Ben Amara M, Delmas C (2010b) A layered iron(III) phosphate phase, Na3Fe3(PO4)4: synthesis, structure, and electrochemical properties as positive electrode in sodium batteries. J Phys Chem C 114:10034 -10044. https://doi.org/10.1021 /jp100751b	Trad K, Carlier D, Croguennec L, Wattiaux A, Lajmi B, Ben Amara M, Delmas C (2010b) A layered iron(III) phosphate phase, Na3Fe3(PO4)4: synthesis, structure, and electrochemical properties as positive electrode in sodium batteries. J Phys Chem C 114:10034 -10044.
37	27	27	479	#/texts/453	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 482.68, 215.52, 37.34]	Tripathi R, Wood SM, Islam MS, Nazar LF (2013) Na-ion mobility in layered Na2FePO4F and olivine Na[Fe,Mn]PO4. Energy Environ Sci 6:2257 -2264. https://doi.org/10.1039 /C3EE40914G	Tripathi R, Wood SM, Islam MS, Nazar LF (2013) Na-ion mobility in layered Na2FePO4F and olivine Na[Fe,Mn]PO4. Energy Environ Sci 6:2257 -2264.	Tripathi R, Wood SM, Islam MS, Nazar LF (2013) Na-ion mobility in layered Na2FePO4F and olivine Na[Fe,Mn]PO4. Energy Environ Sci 6:2257 -2264. https://doi.org/10.1039 /C3EE40914G	Tripathi R, Wood SM, Islam MS, Nazar LF (2013) Na-ion mobility in layered Na2FePO4F and olivine Na[Fe,Mn]PO4. Energy Environ Sci 6:2257 -2264.
37	28	28	480	#/texts/454	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 523.38, 215.49, 27.46]	Tsutomu O, Yoshinari M (2001) Layered lithium insertion material of LiCo1/3Ni1/3Mn1/3O2 for lithium-ion batteries. Chem Lett 30:642 -643. https://doi.org/10.1246/cl.2001.642	Tsutomu O, Yoshinari M (2001) Layered lithium insertion material of LiCo1/3Ni1/3Mn1/3O2 for lithium-ion batteries. Chem Lett 30:642 -643.	Tsutomu O, Yoshinari M (2001) Layered lithium insertion material of LiCo1/3Ni1/3Mn1/3O2 for lithium-ion batteries. Chem Lett 30:642 -643. https://doi.org/10.1246/cl.2001.642	Tsutomu O, Yoshinari M (2001) Layered lithium insertion material of LiCo1/3Ni1/3Mn1/3O2 for lithium-ion batteries. Chem Lett 30:642 -643.
37	29	29	481	#/texts/455	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 551.07, 215.51, 40.43]	Wang H et al (2011a) LiMn1 -xFexPO4 nanorods grown on graphene sheets for ultrahigh-rate-performance lithium ion batteries. Angew Chem Int Ed 50:7364 -7368. https://doi. org/10.1002/anie.201103163	Wang H et al (2011a) LiMn1 -xFexPO4 nanorods grown on graphene sheets for ultrahigh-rate-performance lithium ion batteries. Angew Chem Int Ed 50:7364 -7368. org/10.1002/anie.201103163	Wang H et al (2011a) LiMn1 -xFexPO4 nanorods grown on graphene sheets for ultrahigh-rate-performance lithium ion batteries. Angew Chem Int Ed 50:7364 -7368. https://doi. org/10.1002/anie.201103163	Wang H et al (2011a) LiMn1 -xFexPO4 nanorods grown on graphene sheets for ultrahigh-rate-performance lithium ion batteries. Angew Chem Int Ed 50:7364 -7368. org/10.1002/anie.201103163
37	30	30	482	#/texts/456	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 594.86, 215.38, 27.55]	Wang L, Li H, Huang X, Baudrin E (2011b) A comparative study of Fd-3m and P4332 B LiNi0.5Mn1.5O4 ^ . Solid State Ionics 193:32 -38. https://doi.org/10.1016/j.ssi.2011.04.007	Wang L, Li H, Huang X, Baudrin E (2011b) A comparative study of Fd-3m and P4332 B LiNi0.5Mn1.5O4 ^ . Solid State Ionics 193:32 -38.	Wang L, Li H, Huang X, Baudrin E (2011b) A comparative study of Fd-3m and P4332 B LiNi0.5Mn1.5O4 ^ . Solid State Ionics 193:32 -38. https://doi.org/10.1016/j.ssi.2011.04.007	Wang L, Li H, Huang X, Baudrin E (2011b) A comparative study of Fd-3m and P4332 B LiNi0.5Mn1.5O4 ^ . Solid State Ionics 193:32 -38.
37	31	31	483	#/texts/457	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p37:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 625.66, 215.5, 37.34]	Wang L, Lu Y, Liu J, Xu M, Cheng J, Zhang D, Goodenough JB (2013) A superior low-cost cathode for a Na-Ion battery. Angew Chem Int Ed 52:1964 -1967. https://doi.org/10.1002 /anie.201206854	Wang L, Lu Y, Liu J, Xu M, Cheng J, Zhang D, Goodenough JB (2013) A superior low-cost cathode for a Na-Ion battery. Angew Chem Int Ed 52:1964 -1967.	Wang L, Lu Y, Liu J, Xu M, Cheng J, Zhang D, Goodenough JB (2013) A superior low-cost cathode for a Na-Ion battery. Angew Chem Int Ed 52:1964 -1967. https://doi.org/10.1002 /anie.201206854	Wang L, Lu Y, Liu J, Xu M, Cheng J, Zhang D, Goodenough JB (2013) A superior low-cost cathode for a Na-Ion battery. Angew Chem Int Ed 52:1964 -1967.
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38	2	2	485	#/texts/459	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_1_of_2	1	2	p38:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 38 of 40	Page 38 of 40	Page 38 of 40	Page 38 of 40
38	4	3	486	#/texts/461	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 55.45, 215.49, 47.37]	Wang B, Al Abdulla W, Wang D, Zhao XS (2015a) A threedimensional porous LiFePO4 cathode material modified with a nitrogen-doped graphene aerogel for high-power lithium ion batteries. Energy Environ Sci 8:869 -875. https…	Wang B, Al Abdulla W, Wang D, Zhao XS (2015a) A threedimensional porous LiFePO4 cathode material modified with a nitrogen-doped graphene aerogel for high-power lithium ion batteries. Energy Environ Sci 8:869 -875. org/1…	Wang B, Al Abdulla W, Wang D, Zhao XS (2015a) A threedimensional porous LiFePO4 cathode material modified with a nitrogen-doped graphene aerogel for high-power lithium ion batteries. Energy Environ Sci 8:869 -875. https://doi. org/10.1039/C4EE03825H	Wang B, Al Abdulla W, Wang D, Zhao XS (2015a) A threedimensional porous LiFePO4 cathode material modified with a nitrogen-doped graphene aerogel for high-power lithium ion batteries. Energy Environ Sci 8:869 -875. org/10.1039/C4EE03825H
38	5	4	487	#/texts/462	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 106.24, 215.51, 47.37]	Wang X, Kurono R, Nishimura S-i, Okubo M, Yamada A (2015b) Iron -oxalato framework with one-dimensional open channels for electrochemical sodium-ion intercalation. Chem Eur J 21:1096 -1101. https://doi.org/10.1002 /chem…	Wang X, Kurono R, Nishimura S-i, Okubo M, Yamada A (2015b) Iron -oxalato framework with one-dimensional open channels for electrochemical sodium-ion intercalation. Chem Eur J 21:1096 -1101.	Wang X, Kurono R, Nishimura S-i, Okubo M, Yamada A (2015b) Iron -oxalato framework with one-dimensional open channels for electrochemical sodium-ion intercalation. Chem Eur J 21:1096 -1101. https://doi.org/10.1002 /chem.201404929	Wang X, Kurono R, Nishimura S-i, Okubo M, Yamada A (2015b) Iron -oxalato framework with one-dimensional open channels for electrochemical sodium-ion intercalation. Chem Eur J 21:1096 -1101.
38	6	5	488	#/texts/463	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 157.04, 215.51, 37.34]	Wang F, Wu X, Li C, Zhu Y, Fu L, Wu Y, Liu X (2016) Nanostructured positive electrode materials for post-lithium ion batteries. Energy Environ Sci 9:3570 -3611. https://doi. org/10.1039/C6EE02070D	Wang F, Wu X, Li C, Zhu Y, Fu L, Wu Y, Liu X (2016) Nanostructured positive electrode materials for post-lithium ion batteries. Energy Environ Sci 9:3570 -3611. org/10.1039/C6EE02070D	Wang F, Wu X, Li C, Zhu Y, Fu L, Wu Y, Liu X (2016) Nanostructured positive electrode materials for post-lithium ion batteries. Energy Environ Sci 9:3570 -3611. https://doi. org/10.1039/C6EE02070D	Wang F, Wu X, Li C, Zhu Y, Fu L, Wu Y, Liu X (2016) Nanostructured positive electrode materials for post-lithium ion batteries. Energy Environ Sci 9:3570 -3611. org/10.1039/C6EE02070D
38	7	6	489	#/texts/464	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 197.79, 215.45, 37.44]	Wang C, Li S, Han Y, Lu Z (2017) Assembly of LiMnPO4 Nanoplates into microclusters as a high-performance cathode in lithium-ion batteries. ACS Appl Mater Interfaces 9: 27618 -27624. https://doi.org/10.1021/acsami.7b05868	Wang C, Li S, Han Y, Lu Z (2017) Assembly of LiMnPO4 Nanoplates into microclusters as a high-performance cathode in lithium-ion batteries. ACS Appl Mater Interfaces 9: 27618 -27624.	Wang C, Li S, Han Y, Lu Z (2017) Assembly of LiMnPO4 Nanoplates into microclusters as a high-performance cathode in lithium-ion batteries. ACS Appl Mater Interfaces 9: 27618 -27624. https://doi.org/10.1021/acsami.7b05868	Wang C, Li S, Han Y, Lu Z (2017) Assembly of LiMnPO4 Nanoplates into microclusters as a high-performance cathode in lithium-ion batteries. ACS Appl Mater Interfaces 9: 27618 -27624.
38	8	7	490	#/texts/465	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 238.55, 215.45, 47.37]	Wei S, Mortemard de Boisse B, Oyama G, Nishimura S-i, Yamada A (2016) Synthesis and electrochemistry of Na2.5(Fe1 -yMny)1.75(SO4)3 Solid solutions for Na-Ion batteries. ChemElectroChem 3:209 -213. https://doi.org/10.100…	Wei S, Mortemard de Boisse B, Oyama G, Nishimura S-i, Yamada A (2016) Synthesis and electrochemistry of Na2.5(Fe1 -yMny)1.75(SO4)3 Solid solutions for Na-Ion batteries. ChemElectroChem 3:209 -213.	Wei S, Mortemard de Boisse B, Oyama G, Nishimura S-i, Yamada A (2016) Synthesis and electrochemistry of Na2.5(Fe1 -yMny)1.75(SO4)3 Solid solutions for Na-Ion batteries. ChemElectroChem 3:209 -213. https://doi.org/10.1002 /celc.201500455	Wei S, Mortemard de Boisse B, Oyama G, Nishimura S-i, Yamada A (2016) Synthesis and electrochemistry of Na2.5(Fe1 -yMny)1.75(SO4)3 Solid solutions for Na-Ion batteries. ChemElectroChem 3:209 -213.
38	9	8	491	#/texts/466	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 289.34, 215.5, 37.4]	Wi S et al (2017a) Synchrotron-based x-ray absorption spectroscopy for the electronic structure of LixMn0.8Fe0.2PO4 mesocrystal in Li+ batteries. Nano Energy 31:495 -503. https://doi.org/10.1016/j.nanoen.2016.11.044	Wi S et al (2017a) Synchrotron-based x-ray absorption spectroscopy for the electronic structure of LixMn0.8Fe0.2PO4 mesocrystal in Li+ batteries. Nano Energy 31:495 -503.	Wi S et al (2017a) Synchrotron-based x-ray absorption spectroscopy for the electronic structure of LixMn0.8Fe0.2PO4 mesocrystal in Li+ batteries. Nano Energy 31:495 -503. https://doi.org/10.1016/j.nanoen.2016.11.044	Wi S et al (2017a) Synchrotron-based x-ray absorption spectroscopy for the electronic structure of LixMn0.8Fe0.2PO4 mesocrystal in Li+ batteries. Nano Energy 31:495 -503.
38	10	9	492	#/texts/467	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 330.16, 215.45, 37.34]	Wi S et al (2017b) Insights on the delithiation/lithiation reactions of LixMn0.8Fe0.2PO4 mesocrystals in Li+ batteries by in situ techniques. Nano Energy 39:371 -379. https://doi. org/10.1016/j.nanoen.2017.07.016	Wi S et al (2017b) Insights on the delithiation/lithiation reactions of LixMn0.8Fe0.2PO4 mesocrystals in Li+ batteries by in situ techniques. Nano Energy 39:371 -379. org/10.1016/j.nanoen.2017.07.016	Wi S et al (2017b) Insights on the delithiation/lithiation reactions of LixMn0.8Fe0.2PO4 mesocrystals in Li+ batteries by in situ techniques. Nano Energy 39:371 -379. https://doi. org/10.1016/j.nanoen.2017.07.016	Wi S et al (2017b) Insights on the delithiation/lithiation reactions of LixMn0.8Fe0.2PO4 mesocrystals in Li+ batteries by in situ techniques. Nano Energy 39:371 -379. org/10.1016/j.nanoen.2017.07.016
38	11	10	493	#/texts/468	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 370.92, 215.51, 47.37]	Wood SM, Eames C, Kendrick E, Islam MS (2015) Sodium ion diffusion a n d voltage t r e n d s i n phosphates Na4M3(PO4)2P2O7 (M = Fe, Mn, Co, Ni) for possible high-rate cathodes. J Phys Chem C 119:15935 -15941. https://d…	Wood SM, Eames C, Kendrick E, Islam MS (2015) Sodium ion diffusion a n d voltage t r e n d s i n phosphates Na4M3(PO4)2P2O7 (M = Fe, Mn, Co, Ni) for possible high-rate cathodes. J Phys Chem C 119:15935 -15941.	Wood SM, Eames C, Kendrick E, Islam MS (2015) Sodium ion diffusion a n d voltage t r e n d s i n phosphates Na4M3(PO4)2P2O7 (M = Fe, Mn, Co, Ni) for possible high-rate cathodes. J Phys Chem C 119:15935 -15941. https://doi.org/10.1021/acs.jpcc.5b04648	Wood SM, Eames C, Kendrick E, Islam MS (2015) Sodium ion diffusion a n d voltage t r e n d s i n phosphates Na4M3(PO4)2P2O7 (M = Fe, Mn, Co, Ni) for possible high-rate cathodes. J Phys Chem C 119:15935 -15941.
38	12	11	494	#/texts/469	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 421.71, 215.54, 47.37]	Wu X, Zheng J, Gong Z, Yang Y (2011) Sol-gel synthesis and electrochemical properties of fluorophosphates Na2Fe1xMnxPO4F/C (x = 0, 0.1, 0.3, 0.7, 1) composite as cathode materials for lithium ion battery. J Mater Chem 2…	Wu X, Zheng J, Gong Z, Yang Y (2011) Sol-gel synthesis and electrochemical properties of fluorophosphates Na2Fe1xMnxPO4F/C (x = 0, 0.1, 0.3, 0.7, 1) composite as cathode materials for lithium ion battery. J Mater Chem 2…	Wu X, Zheng J, Gong Z, Yang Y (2011) Sol-gel synthesis and electrochemical properties of fluorophosphates Na2Fe1xMnxPO4F/C (x = 0, 0.1, 0.3, 0.7, 1) composite as cathode materials for lithium ion battery. J Mater Chem 21:18630 -18637. https://doi.org/10.1039/C1JM13578C	Wu X, Zheng J, Gong Z, Yang Y (2011) Sol-gel synthesis and electrochemical properties of fluorophosphates Na2Fe1xMnxPO4F/C (x = 0, 0.1, 0.3, 0.7, 1) composite as cathode materials for lithium ion battery. J Mater Chem 21:18630 -18637.
38	13	12	495	#/texts/470	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 472.5, 215.52, 37.44]	Wu X, Guo J, Wang D, Zhong G, McDonald MJ, Yang Y (2015) P2-type Na0.66Ni0.33 -xZnxMn0.67O2 as new high-voltage cathode materials for sodium-ion batteries. J Power Sources 281:18 -26. https://doi.org/10.1016/j.jpowsour.…	Wu X, Guo J, Wang D, Zhong G, McDonald MJ, Yang Y (2015) P2-type Na0.66Ni0.33 -xZnxMn0.67O2 as new high-voltage cathode materials for sodium-ion batteries. J Power Sources 281:18 -26.	Wu X, Guo J, Wang D, Zhong G, McDonald MJ, Yang Y (2015) P2-type Na0.66Ni0.33 -xZnxMn0.67O2 as new high-voltage cathode materials for sodium-ion batteries. J Power Sources 281:18 -26. https://doi.org/10.1016/j.jpowsour.2014.12.083	Wu X, Guo J, Wang D, Zhong G, McDonald MJ, Yang Y (2015) P2-type Na0.66Ni0.33 -xZnxMn0.67O2 as new high-voltage cathode materials for sodium-ion batteries. J Power Sources 281:18 -26.
38	14	13	496	#/texts/471	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 513.26, 215.51, 47.37]	Wu X, Zhong G, Yang Y (2016) Sol-gel synthesis of Na4Fe3(PO4)2(P2O7)/C nanocomposite for sodium ion batteries and new insights into microstructural evolution during sodium extraction. J Power Sources 327:666 -674. https…	Wu X, Zhong G, Yang Y (2016) Sol-gel synthesis of Na4Fe3(PO4)2(P2O7)/C nanocomposite for sodium ion batteries and new insights into microstructural evolution during sodium extraction. J Power Sources 327:666 -674.	Wu X, Zhong G, Yang Y (2016) Sol-gel synthesis of Na4Fe3(PO4)2(P2O7)/C nanocomposite for sodium ion batteries and new insights into microstructural evolution during sodium extraction. J Power Sources 327:666 -674. https://doi.org/10.1016/j.jpowsour.2016.07.061	Wu X, Zhong G, Yang Y (2016) Sol-gel synthesis of Na4Fe3(PO4)2(P2O7)/C nanocomposite for sodium ion batteries and new insights into microstructural evolution during sodium extraction. J Power Sources 327:666 -674.
38	15	14	497	#/texts/472	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 564.05, 215.49, 27.36]	Xia Y, Zhou Y, Yoshio M (1997) Capacity fading on cycling of 4 V Li / LiMn2 O 4 Cells. J Electrochem Soc 144:2593 -2600. https://doi.org/10.1149/1.1837870	Xia Y, Zhou Y, Yoshio M (1997) Capacity fading on cycling of 4 V Li / LiMn2 O 4 Cells. J Electrochem Soc 144:2593 -2600.	Xia Y, Zhou Y, Yoshio M (1997) Capacity fading on cycling of 4 V Li / LiMn2 O 4 Cells. J Electrochem Soc 144:2593 -2600. https://doi.org/10.1149/1.1837870	Xia Y, Zhou Y, Yoshio M (1997) Capacity fading on cycling of 4 V Li / LiMn2 O 4 Cells. J Electrochem Soc 144:2593 -2600.
38	16	15	498	#/texts/473	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 594.83, 215.51, 37.44]	Xia H, Lu L, Meng YS, Ceder G (2007) Phase transitions and high-voltage electrochemical behavior of LiCoO2 thin films grown by pulsed laser deposition. J Electrochem Soc 154: A337 -A342. https://doi.org/10.1149/1.2509021	Xia H, Lu L, Meng YS, Ceder G (2007) Phase transitions and high-voltage electrochemical behavior of LiCoO2 thin films grown by pulsed laser deposition. J Electrochem Soc 154: A337 -A342.	Xia H, Lu L, Meng YS, Ceder G (2007) Phase transitions and high-voltage electrochemical behavior of LiCoO2 thin films grown by pulsed laser deposition. J Electrochem Soc 154: A337 -A342. https://doi.org/10.1149/1.2509021	Xia H, Lu L, Meng YS, Ceder G (2007) Phase transitions and high-voltage electrochemical behavior of LiCoO2 thin films grown by pulsed laser deposition. J Electrochem Soc 154: A337 -A342.
38	17	16	499	#/texts/474	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p38:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.8, 635.59, 215.52, 27.36]	Xiao X, Wang L, Wang D, He X, Peng Q, Li Y (2009) Hydrothermal synthesis of orthorhombic LiMnO2 nanoparticles and LiMnO2 nanorods and comparison of their	Xiao X, Wang L, Wang D, He X, Peng Q, Li Y (2009) Hydrothermal synthesis of orthorhombic LiMnO2 nanoparticles and LiMnO2 nanorods and comparison of their	Xiao X, Wang L, Wang D, He X, Peng Q, Li Y (2009) Hydrothermal synthesis of orthorhombic LiMnO2 nanoparticles and LiMnO2 nanorods and comparison of their	Xiao X, Wang L, Wang D, He X, Peng Q, Li Y (2009) Hydrothermal synthesis of orthorhombic LiMnO2 nanoparticles and LiMnO2 nanorods and comparison of their
38	3	17	500	#/texts/460	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p38:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
38	18	18	501	#/texts/475	list_item	body_heading	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p38:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[301.84, 53.85, 198.44, 18.93]	electrochemical performances. Nano Res 2:923 -930. https://doi.org/10.1007/s12274-009-9094-8	electrochemical performances. Nano Res 2:923 -930.	electrochemical performances. Nano Res 2:923 -930. https://doi.org/10.1007/s12274-009-9094-8	electrochemical performances. Nano Res 2:923 -930.
38	19	19	502	#/texts/476	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 75.46, 215.42, 37.34]	Xiao J et al (2012) High-performance LiNi0.5Mn1.5O4 spinel controlled by Mn3+concentration and site disorder. Adv Mater 24:2109 -2116. https://doi.org/10.1002 /adma.201104767	Xiao J et al (2012) High-performance LiNi0.5Mn1.5O4 spinel controlled by Mn3+concentration and site disorder. Adv Mater 24:2109 -2116.	Xiao J et al (2012) High-performance LiNi0.5Mn1.5O4 spinel controlled by Mn3+concentration and site disorder. Adv Mater 24:2109 -2116. https://doi.org/10.1002 /adma.201104767	Xiao J et al (2012) High-performance LiNi0.5Mn1.5O4 spinel controlled by Mn3+concentration and site disorder. Adv Mater 24:2109 -2116.
38	20	20	503	#/texts/477	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 115.48, 215.46, 37.44]	Xu M et al (2017a) Tailoring anisotropic Li-Ion transport tunnels on orthogonally arranged Li-rich layered oxide nanoplates toward high-performance Li-Ion batteries. Nano Lett 17: 1670 -1677. https://doi.org/10.1021/acs…	Xu M et al (2017a) Tailoring anisotropic Li-Ion transport tunnels on orthogonally arranged Li-rich layered oxide nanoplates toward high-performance Li-Ion batteries. Nano Lett 17: 1670 -1677.	Xu M et al (2017a) Tailoring anisotropic Li-Ion transport tunnels on orthogonally arranged Li-rich layered oxide nanoplates toward high-performance Li-Ion batteries. Nano Lett 17: 1670 -1677. https://doi.org/10.1021/acs.nanolett.6b04951	Xu M et al (2017a) Tailoring anisotropic Li-Ion transport tunnels on orthogonally arranged Li-rich layered oxide nanoplates toward high-performance Li-Ion batteries. Nano Lett 17: 1670 -1677.
38	21	21	504	#/texts/478	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 155.5, 215.55, 37.34]	Xu X, Deng S, Wang H, Liu J, Yan H (2017b) Research progress in improving the cycling stability of high-voltage LiNi0.5Mn1.5O4 cathode in lithium-ion battery. NanoMicro Lett 9:22. https://doi.org/10.1007/s40820-016-0123…	Xu X, Deng S, Wang H, Liu J, Yan H (2017b) Research progress in improving the cycling stability of high-voltage LiNi0.5Mn1.5O4 cathode in lithium-ion battery. NanoMicro Lett 9:22.	Xu X, Deng S, Wang H, Liu J, Yan H (2017b) Research progress in improving the cycling stability of high-voltage LiNi0.5Mn1.5O4 cathode in lithium-ion battery. NanoMicro Lett 9:22. https://doi.org/10.1007/s40820-016-0123-3	Xu X, Deng S, Wang H, Liu J, Yan H (2017b) Research progress in improving the cycling stability of high-voltage LiNi0.5Mn1.5O4 cathode in lithium-ion battery. NanoMicro Lett 9:22.
38	22	22	505	#/texts/479	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 195.47, 215.55, 47.37]	Yabuuchi N, Yoshii K, Myung S-T, Nakai I, Komaba S (2011) Detailed studies of a high-capacity electrode material for rechargeable batteries, Li2MnO3 -LiCo1/3Ni1/3Mn1/3O2. J Am Chem Soc 133:4404 -4419. https://doi.org/10…	Yabuuchi N, Yoshii K, Myung S-T, Nakai I, Komaba S (2011) Detailed studies of a high-capacity electrode material for rechargeable batteries, Li2MnO3 -LiCo1/3Ni1/3Mn1/3O2. J Am Chem Soc 133:4404 -4419.	Yabuuchi N, Yoshii K, Myung S-T, Nakai I, Komaba S (2011) Detailed studies of a high-capacity electrode material for rechargeable batteries, Li2MnO3 -LiCo1/3Ni1/3Mn1/3O2. J Am Chem Soc 133:4404 -4419. https://doi.org/10.1021 /ja108588y	Yabuuchi N, Yoshii K, Myung S-T, Nakai I, Komaba S (2011) Detailed studies of a high-capacity electrode material for rechargeable batteries, Li2MnO3 -LiCo1/3Ni1/3Mn1/3O2. J Am Chem Soc 133:4404 -4419.
38	23	23	506	#/texts/480	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 245.52, 215.52, 47.31]	Yabuuchi N et al (2012a) P2-type Nax[Fe1/2Mn1/2]O2 made from earth-abundant elements for rechargeable Na batteries. Nat Mater 11:512 -517 ht t p : / / w w w. n a t u r e . c o m / n m a t / j o u r n a l / v 1 1 / n 6 /…	Yabuuchi N et al (2012a) P2-type Nax[Fe1/2Mn1/2]O2 made from earth-abundant elements for rechargeable Na batteries. Nat Mater 11:512 -517 ht t p : / / w w w. n a t u r e . c o m / n m a t / j o u r n a l / v 1 1 / n 6 /…	Yabuuchi N et al (2012a) P2-type Nax[Fe1/2Mn1/2]O2 made from earth-abundant elements for rechargeable Na batteries. Nat Mater 11:512 -517 ht t p : / / w w w. n a t u r e . c o m / n m a t / j o u r n a l / v 1 1 / n 6 / a b s / n m a t 3 3 0 9 . html#supplementary-information	Yabuuchi N et al (2012a) P2-type Nax[Fe1/2Mn1/2]O2 made from earth-abundant elements for rechargeable Na batteries. Nat Mater 11:512 -517 ht t p : / / w w w. n a t u r e . c o m / n m a t / j o u r n a l / v 1 1 / n 6 / a b s / n m a t 3 3 0 9 . html#supplementary-information
38	24	24	507	#/texts/481	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 295.52, 215.53, 37.34]	Yabuuchi N, Yoshida H, Komaba S (2012b) Crystal Structures and Electrode Performance of Alpha-NaFeO<sub>2</sub> for Rechargeable Sodium Batteries. Electrochemistry 80:716 -719. https://doi.org/10.5796/electrochemistry.8…	Yabuuchi N, Yoshida H, Komaba S (2012b) Crystal Structures and Electrode Performance of Alpha-NaFeO<sub>2</sub> for Rechargeable Sodium Batteries. Electrochemistry 80:716 -719.	Yabuuchi N, Yoshida H, Komaba S (2012b) Crystal Structures and Electrode Performance of Alpha-NaFeO<sub>2</sub> for Rechargeable Sodium Batteries. Electrochemistry 80:716 -719. https://doi.org/10.5796/electrochemistry.80.716	Yabuuchi N, Yoshida H, Komaba S (2012b) Crystal Structures and Electrode Performance of Alpha-NaFeO<sub>2</sub> for Rechargeable Sodium Batteries. Electrochemistry 80:716 -719.
38	25	25	508	#/texts/482	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 335.54, 215.45, 47.31]	Yabuuchi N, Hara R, Kubota K, Paulsen J, Kumakura S, Komaba S (2014a) A new electrode material for rechargeable sodium batteries: P2-type Na2/3[Mg0.28Mn0.72]O2 with anomalously high reversible capacity. J Mater Chem A 2…	Yabuuchi N, Hara R, Kubota K, Paulsen J, Kumakura S, Komaba S (2014a) A new electrode material for rechargeable sodium batteries: P2-type Na2/3[Mg0.28Mn0.72]O2 with anomalously high reversible capacity. J Mater Chem A 2…	Yabuuchi N, Hara R, Kubota K, Paulsen J, Kumakura S, Komaba S (2014a) A new electrode material for rechargeable sodium batteries: P2-type Na2/3[Mg0.28Mn0.72]O2 with anomalously high reversible capacity. J Mater Chem A 2:16851 -16855. https://doi.org/10.1039/C4TA04351K	Yabuuchi N, Hara R, Kubota K, Paulsen J, Kumakura S, Komaba S (2014a) A new electrode material for rechargeable sodium batteries: P2-type Na2/3[Mg0.28Mn0.72]O2 with anomalously high reversible capacity. J Mater Chem A 2:16851 -16855.
38	26	26	509	#/texts/483	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.89, 385.53, 215.37, 27.46]	Yabuuchi N, Kubota K, Dahbi M, Komaba S (2014b) Research development on sodium-ion batteries. Chem Rev 114: 11636 -11682. https://doi.org/10.1021/cr500192f	Yabuuchi N, Kubota K, Dahbi M, Komaba S (2014b) Research development on sodium-ion batteries. Chem Rev 114: 11636 -11682.	Yabuuchi N, Kubota K, Dahbi M, Komaba S (2014b) Research development on sodium-ion batteries. Chem Rev 114: 11636 -11682. https://doi.org/10.1021/cr500192f	Yabuuchi N, Kubota K, Dahbi M, Komaba S (2014b) Research development on sodium-ion batteries. Chem Rev 114: 11636 -11682.
38	27	27	510	#/texts/484	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 415.52, 215.44, 37.4]	Yakubovich OV, Karimova OV, Mel'nikov OK (1997) The mixed anionic framework in the structure of Na2{MnF[PO4]}. Acta Crystallogr C 53:395 -397. https://doi.org/10.1107 /S0108270196014102	Yakubovich OV, Karimova OV, Mel'nikov OK (1997) The mixed anionic framework in the structure of Na2{MnF[PO4]}. Acta Crystallogr C 53:395 -397.	Yakubovich OV, Karimova OV, Mel'nikov OK (1997) The mixed anionic framework in the structure of Na2{MnF[PO4]}. Acta Crystallogr C 53:395 -397. https://doi.org/10.1107 /S0108270196014102	Yakubovich OV, Karimova OV, Mel'nikov OK (1997) The mixed anionic framework in the structure of Na2{MnF[PO4]}. Acta Crystallogr C 53:395 -397.
38	28	28	511	#/texts/485	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 455.54, 215.43, 37.34]	Yamada A, Kudo Y, Liu K-Y (2001) Reaction mechanism of the olivine-type Li x ( Mn0.6Fe0.4 ) PO 4 ( 0 ⩽ x ⩽ 1 ). J Electrochem Soc 148:A747 -A754. https://doi.org/10.1149 /1.1375167	Yamada A, Kudo Y, Liu K-Y (2001) Reaction mechanism of the olivine-type Li x ( Mn0.6Fe0.4 ) PO 4 ( 0 ⩽ x ⩽ 1 ). J Electrochem Soc 148:A747 -A754.	Yamada A, Kudo Y, Liu K-Y (2001) Reaction mechanism of the olivine-type Li x ( Mn0.6Fe0.4 ) PO 4 ( 0 ⩽ x ⩽ 1 ). J Electrochem Soc 148:A747 -A754. https://doi.org/10.1149 /1.1375167	Yamada A, Kudo Y, Liu K-Y (2001) Reaction mechanism of the olivine-type Li x ( Mn0.6Fe0.4 ) PO 4 ( 0 ⩽ x ⩽ 1 ). J Electrochem Soc 148:A747 -A754.
38	29	29	512	#/texts/486	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.92, 495.56, 215.52, 37.34]	Yamada A, Iwane N, Harada Y, Nishimura S-i, Koyama Y, Tanaka I (2010) Lithium iron borates as high-capacity battery electrodes. Adv Mater 22:3583 -3587. https://doi.org/10.1002 /adma.201001039	Yamada A, Iwane N, Harada Y, Nishimura S-i, Koyama Y, Tanaka I (2010) Lithium iron borates as high-capacity battery electrodes. Adv Mater 22:3583 -3587.	Yamada A, Iwane N, Harada Y, Nishimura S-i, Koyama Y, Tanaka I (2010) Lithium iron borates as high-capacity battery electrodes. Adv Mater 22:3583 -3587. https://doi.org/10.1002 /adma.201001039	Yamada A, Iwane N, Harada Y, Nishimura S-i, Koyama Y, Tanaka I (2010) Lithium iron borates as high-capacity battery electrodes. Adv Mater 22:3583 -3587.
38	30	30	513	#/texts/487	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.93, 535.58, 215.52, 37.44]	Yan S-Y, Wang C-Y, Gu R-M, Li M-W (2015) Enhanced kinetic behaviors of LiMn0.5Fe0.5PO4/C cathode material by Fe substitution and carbon coating. J Solid State Electrochem 19:2943 -2950. https://doi.org/10.1007/s10008-01…	Yan S-Y, Wang C-Y, Gu R-M, Li M-W (2015) Enhanced kinetic behaviors of LiMn0.5Fe0.5PO4/C cathode material by Fe substitution and carbon coating. J Solid State Electrochem 19:2943 -2950.	Yan S-Y, Wang C-Y, Gu R-M, Li M-W (2015) Enhanced kinetic behaviors of LiMn0.5Fe0.5PO4/C cathode material by Fe substitution and carbon coating. J Solid State Electrochem 19:2943 -2950. https://doi.org/10.1007/s10008-015-2905-9	Yan S-Y, Wang C-Y, Gu R-M, Li M-W (2015) Enhanced kinetic behaviors of LiMn0.5Fe0.5PO4/C cathode material by Fe substitution and carbon coating. J Solid State Electrochem 19:2943 -2950.
38	31	31	514	#/texts/488	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.93, 575.6, 215.47, 47.31]	Yang J, Han X, Zhang X, Cheng F, Chen J (2013) Spinel LiNi0.5Mn1.5O4 cathode for rechargeable lithiumion batteries: nano vs micro, ordered phase (P4332) vs disordered phase (Fd $\bar 3$ m). Nano Res. https://doi.org/10.…	Yang J, Han X, Zhang X, Cheng F, Chen J (2013) Spinel LiNi0.5Mn1.5O4 cathode for rechargeable lithiumion batteries: nano vs micro, ordered phase (P4332) vs disordered phase (Fd $\bar 3$ m). Nano Res.	Yang J, Han X, Zhang X, Cheng F, Chen J (2013) Spinel LiNi0.5Mn1.5O4 cathode for rechargeable lithiumion batteries: nano vs micro, ordered phase (P4332) vs disordered phase (Fd $\bar 3$ m). Nano Res. https://doi.org/10.1007 /s12274-013-0343-5	Yang J, Han X, Zhang X, Cheng F, Chen J (2013) Spinel LiNi0.5Mn1.5O4 cathode for rechargeable lithiumion batteries: nano vs micro, ordered phase (P4332) vs disordered phase (Fd $\bar 3$ m). Nano Res.
38	32	32	515	#/texts/489	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p38:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.93, 625.6, 215.53, 37.34]	Yang D, Xu J, Liao X-Z, Wang H, He Y-S, Ma Z-F (2015a) Prussian blue without coordinated water as a superior cathode for sodium-ion batteries. Chem Commun 51:8181 -8184. https://doi.org/10.1039/C5CC01180A	Yang D, Xu J, Liao X-Z, Wang H, He Y-S, Ma Z-F (2015a) Prussian blue without coordinated water as a superior cathode for sodium-ion batteries. Chem Commun 51:8181 -8184.	Yang D, Xu J, Liao X-Z, Wang H, He Y-S, Ma Z-F (2015a) Prussian blue without coordinated water as a superior cathode for sodium-ion batteries. Chem Commun 51:8181 -8184. https://doi.org/10.1039/C5CC01180A	Yang D, Xu J, Liao X-Z, Wang H, He Y-S, Ma Z-F (2015a) Prussian blue without coordinated water as a superior cathode for sodium-ion batteries. Chem Commun 51:8181 -8184.
39	1	1	516	#/texts/490	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_1_of_2	1	2	p39:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 102.17, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
39	3	2	517	#/texts/492	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 55.45, 215.46, 37.34]	Yang J, Hu L, Zheng J, He D, Tian L, Mu S, Pan F (2015b) Li2FeSiO4 nanorods bonded with graphene for high performance batteries. J Mater Chem A 3:9601 -9608. https://doi. org/10.1039/C5TA01529D	Yang J, Hu L, Zheng J, He D, Tian L, Mu S, Pan F (2015b) Li2FeSiO4 nanorods bonded with graphene for high performance batteries. J Mater Chem A 3:9601 -9608. org/10.1039/C5TA01529D	Yang J, Hu L, Zheng J, He D, Tian L, Mu S, Pan F (2015b) Li2FeSiO4 nanorods bonded with graphene for high performance batteries. J Mater Chem A 3:9601 -9608. https://doi. org/10.1039/C5TA01529D	Yang J, Hu L, Zheng J, He D, Tian L, Mu S, Pan F (2015b) Li2FeSiO4 nanorods bonded with graphene for high performance batteries. J Mater Chem A 3:9601 -9608. org/10.1039/C5TA01529D
39	4	3	518	#/texts/493	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 96.21, 215.53, 47.37]	Yang W et al (2015c) LiMn0.8Fe0.2PO4/C cathode material synthesized via co-precipitation method with superior high-rate and low-temperature performances for lithium-ion batteries. J Power Sources 275:785 -791. https://d…	Yang W et al (2015c) LiMn0.8Fe0.2PO4/C cathode material synthesized via co-precipitation method with superior high-rate and low-temperature performances for lithium-ion batteries. J Power Sources 275:785 -791.	Yang W et al (2015c) LiMn0.8Fe0.2PO4/C cathode material synthesized via co-precipitation method with superior high-rate and low-temperature performances for lithium-ion batteries. J Power Sources 275:785 -791. https://doi.org/10.1016/j. jpowsour.2014.11.063	Yang W et al (2015c) LiMn0.8Fe0.2PO4/C cathode material synthesized via co-precipitation method with superior high-rate and low-temperature performances for lithium-ion batteries. J Power Sources 275:785 -791.
39	5	4	519	#/texts/494	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 147.0, 215.55, 37.4]	Yang J et al (2016) Tuning structural stability and lithium-storage properties by d-orbital hybridization substitution in full tetrahedron Li2FeSiO4 nanocrystal. Nano Energy 20:117 -125. https://doi.org/10.1016/j.nanoen…	Yang J et al (2016) Tuning structural stability and lithium-storage properties by d-orbital hybridization substitution in full tetrahedron Li2FeSiO4 nanocrystal. Nano Energy 20:117 -125.	Yang J et al (2016) Tuning structural stability and lithium-storage properties by d-orbital hybridization substitution in full tetrahedron Li2FeSiO4 nanocrystal. Nano Energy 20:117 -125. https://doi.org/10.1016/j.nanoen.2015.12.004	Yang J et al (2016) Tuning structural stability and lithium-storage properties by d-orbital hybridization substitution in full tetrahedron Li2FeSiO4 nanocrystal. Nano Energy 20:117 -125.
39	6	5	520	#/texts/495	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 187.82, 215.47, 37.34]	Yao W, Sougrati M-T, Hoang K, Hui J, Lightfoot P, Armstrong AR (2017a) Na2Fe(C2O4)F2: a new iron-based polyoxyanion cathode for Li/Na ion batteries. Chem Mater 29:2167 -2172. https://doi.org/10.1021/acs.chemmater.6b04859	Yao W, Sougrati M-T, Hoang K, Hui J, Lightfoot P, Armstrong AR (2017a) Na2Fe(C2O4)F2: a new iron-based polyoxyanion cathode for Li/Na ion batteries. Chem Mater 29:2167 -2172.	Yao W, Sougrati M-T, Hoang K, Hui J, Lightfoot P, Armstrong AR (2017a) Na2Fe(C2O4)F2: a new iron-based polyoxyanion cathode for Li/Na ion batteries. Chem Mater 29:2167 -2172. https://doi.org/10.1021/acs.chemmater.6b04859	Yao W, Sougrati M-T, Hoang K, Hui J, Lightfoot P, Armstrong AR (2017a) Na2Fe(C2O4)F2: a new iron-based polyoxyanion cathode for Li/Na ion batteries. Chem Mater 29:2167 -2172.
39	7	6	521	#/texts/496	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 228.58, 215.5, 47.37]	Yao W, Sougrati M-T, Hoang K, Hui J, Lightfoot P, Armstrong AR (2017b) Reinvestigation of Na2Fe2(C2O4)3·2H2O: an ironbased positive electrode for secondary batteries. Chem Mater 29:9095 -9101. https://doi.org/10.1021/ac…	Yao W, Sougrati M-T, Hoang K, Hui J, Lightfoot P, Armstrong AR (2017b) Reinvestigation of Na2Fe2(C2O4)3·2H2O: an ironbased positive electrode for secondary batteries. Chem Mater 29:9095 -9101.	Yao W, Sougrati M-T, Hoang K, Hui J, Lightfoot P, Armstrong AR (2017b) Reinvestigation of Na2Fe2(C2O4)3·2H2O: an ironbased positive electrode for secondary batteries. Chem Mater 29:9095 -9101. https://doi.org/10.1021/acs.chemmater.7 b02764	Yao W, Sougrati M-T, Hoang K, Hui J, Lightfoot P, Armstrong AR (2017b) Reinvestigation of Na2Fe2(C2O4)3·2H2O: an ironbased positive electrode for secondary batteries. Chem Mater 29:9095 -9101.
39	8	7	522	#/texts/497	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 279.37, 215.55, 37.34]	Ye DL, Ozawa K, Wang B, Hulicova-Jurcakova D, Zou J, Sun CH, Wang LZ (2014a) Capacity-controllable Li-rich cathode materials for lithium-ion batteries. Nano Energy 6:92 -102. https://doi.org/10.1016/j.nanoen.2014.03.013	Ye DL, Ozawa K, Wang B, Hulicova-Jurcakova D, Zou J, Sun CH, Wang LZ (2014a) Capacity-controllable Li-rich cathode materials for lithium-ion batteries. Nano Energy 6:92 -102.	Ye DL, Ozawa K, Wang B, Hulicova-Jurcakova D, Zou J, Sun CH, Wang LZ (2014a) Capacity-controllable Li-rich cathode materials for lithium-ion batteries. Nano Energy 6:92 -102. https://doi.org/10.1016/j.nanoen.2014.03.013	Ye DL, Ozawa K, Wang B, Hulicova-Jurcakova D, Zou J, Sun CH, Wang LZ (2014a) Capacity-controllable Li-rich cathode materials for lithium-ion batteries. Nano Energy 6:92 -102.
39	9	8	523	#/texts/498	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 320.13, 215.53, 37.4]	Ye DL et al (2014b) Understanding the stepwise capacity increase of high energy low-Co Li-rich cathode materials for lithium ion batteries. J Mater Chem A 2:18767 -18774. https://doi. org/10.1039/c4ta03692a	Ye DL et al (2014b) Understanding the stepwise capacity increase of high energy low-Co Li-rich cathode materials for lithium ion batteries. J Mater Chem A 2:18767 -18774. org/10.1039/c4ta03692a	Ye DL et al (2014b) Understanding the stepwise capacity increase of high energy low-Co Li-rich cathode materials for lithium ion batteries. J Mater Chem A 2:18767 -18774. https://doi. org/10.1039/c4ta03692a	Ye DL et al (2014b) Understanding the stepwise capacity increase of high energy low-Co Li-rich cathode materials for lithium ion batteries. J Mater Chem A 2:18767 -18774. org/10.1039/c4ta03692a
39	10	9	524	#/texts/499	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 360.94, 215.5, 47.31]	Ye D, Zeng G, Nogita K, Ozawa K, Hankel M, Searles DJ, Wang L (2015a) Understanding the origin of Li2MnO3 activation in Li-rich cathode materials for lithium-ion batteries. Adv Funct Mater 25:7488 -7496. https://doi.org…	Ye D, Zeng G, Nogita K, Ozawa K, Hankel M, Searles DJ, Wang L (2015a) Understanding the origin of Li2MnO3 activation in Li-rich cathode materials for lithium-ion batteries. Adv Funct Mater 25:7488 -7496.	Ye D, Zeng G, Nogita K, Ozawa K, Hankel M, Searles DJ, Wang L (2015a) Understanding the origin of Li2MnO3 activation in Li-rich cathode materials for lithium-ion batteries. Adv Funct Mater 25:7488 -7496. https://doi.org/10.1002 /adfm.201503276	Ye D, Zeng G, Nogita K, Ozawa K, Hankel M, Searles DJ, Wang L (2015a) Understanding the origin of Li2MnO3 activation in Li-rich cathode materials for lithium-ion batteries. Adv Funct Mater 25:7488 -7496.
39	11	10	525	#/texts/500	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 411.68, 215.54, 47.37]	Ye DL, Sun CH, Chen Y, Ozawa K, Hulicova-Jurcakova D, Zou J, Wang LZ (2015b) Ni-induced stepwise capacity increase in Ni-poor Li-rich cathode materials for high performance lithium ion batteries. Nano Res 8:808 -820. ht…	Ye DL, Sun CH, Chen Y, Ozawa K, Hulicova-Jurcakova D, Zou J, Wang LZ (2015b) Ni-induced stepwise capacity increase in Ni-poor Li-rich cathode materials for high performance lithium ion batteries. Nano Res 8:808 -820. or…	Ye DL, Sun CH, Chen Y, Ozawa K, Hulicova-Jurcakova D, Zou J, Wang LZ (2015b) Ni-induced stepwise capacity increase in Ni-poor Li-rich cathode materials for high performance lithium ion batteries. Nano Res 8:808 -820. https://doi. org/10.1007/s12274-014-0563-3	Ye DL, Sun CH, Chen Y, Ozawa K, Hulicova-Jurcakova D, Zou J, Wang LZ (2015b) Ni-induced stepwise capacity increase in Ni-poor Li-rich cathode materials for high performance lithium ion batteries. Nano Res 8:808 -820. org/10.1007/s12274-014-0563-3
39	12	11	526	#/texts/501	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 462.47, 215.53, 37.4]	Yi T-F, Xie Y , Ye M-F, Jiang L-J, Zhu R-S, Zhu Y-R (2011) Recent developments in the doping of LiNi0.5Mn1.5O4 cathode material for 5 V lithium-ion batteries. Ionics 17:383 -389. https://doi.org/10.1007/s11581-011-0550-6	Yi T-F, Xie Y , Ye M-F, Jiang L-J, Zhu R-S, Zhu Y-R (2011) Recent developments in the doping of LiNi0.5Mn1.5O4 cathode material for 5 V lithium-ion batteries. Ionics 17:383 -389.	Yi T-F, Xie Y , Ye M-F, Jiang L-J, Zhu R-S, Zhu Y-R (2011) Recent developments in the doping of LiNi0.5Mn1.5O4 cathode material for 5 V lithium-ion batteries. Ionics 17:383 -389. https://doi.org/10.1007/s11581-011-0550-6	Yi T-F, Xie Y , Ye M-F, Jiang L-J, Zhu R-S, Zhu Y-R (2011) Recent developments in the doping of LiNi0.5Mn1.5O4 cathode material for 5 V lithium-ion batteries. Ionics 17:383 -389.
39	13	12	527	#/texts/502	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 503.28, 215.5, 47.31]	Yi T-F, Mei J, Zhu Y-R (2016) Key strategies for enhancing the cycling stability and rate capacity of LiNi0.5Mn1.5O4 as high-voltage cathode materials for high power lithium-ion batteries. J Power Sources 316:85 -105. h…	Yi T-F, Mei J, Zhu Y-R (2016) Key strategies for enhancing the cycling stability and rate capacity of LiNi0.5Mn1.5O4 as high-voltage cathode materials for high power lithium-ion batteries. J Power Sources 316:85 -105. o…	Yi T-F, Mei J, Zhu Y-R (2016) Key strategies for enhancing the cycling stability and rate capacity of LiNi0.5Mn1.5O4 as high-voltage cathode materials for high power lithium-ion batteries. J Power Sources 316:85 -105. https://doi. org/10.1016/j.jpowsour.2016.03.070	Yi T-F, Mei J, Zhu Y-R (2016) Key strategies for enhancing the cycling stability and rate capacity of LiNi0.5Mn1.5O4 as high-voltage cathode materials for high power lithium-ion batteries. J Power Sources 316:85 -105. org/10.1016/j.jpowsour.2016.03.070
39	14	13	528	#/texts/503	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 554.02, 215.52, 37.5]	Yoo H, Jo M, Jin B-S, Kim H-S, Cho J (2011) Flexible morphology design of 3D-macroporous LiMnPO4 cathode materials for Li secondary batteries: ball to flake. Adv Energy Mater 1: 347 -351. https://doi.org/10.1002/aenm.20…	Yoo H, Jo M, Jin B-S, Kim H-S, Cho J (2011) Flexible morphology design of 3D-macroporous LiMnPO4 cathode materials for Li secondary batteries: ball to flake. Adv Energy Mater 1: 347 -351.	Yoo H, Jo M, Jin B-S, Kim H-S, Cho J (2011) Flexible morphology design of 3D-macroporous LiMnPO4 cathode materials for Li secondary batteries: ball to flake. Adv Energy Mater 1: 347 -351. https://doi.org/10.1002/aenm.201000049	Yoo H, Jo M, Jin B-S, Kim H-S, Cho J (2011) Flexible morphology design of 3D-macroporous LiMnPO4 cathode materials for Li secondary batteries: ball to flake. Adv Energy Mater 1: 347 -351.
39	15	14	529	#/texts/504	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 594.83, 215.46, 37.44]	You Y, Wu X-L, Yin Y-X, Guo Y-G (2014) High-quality Prussian blue crystals as superior cathode materials for roomtemperature sodium-ion batteries. Energ Environ Sci 7: 1643 -1647. https://doi.org/10.1039/C3EE44004D	You Y, Wu X-L, Yin Y-X, Guo Y-G (2014) High-quality Prussian blue crystals as superior cathode materials for roomtemperature sodium-ion batteries. Energ Environ Sci 7: 1643 -1647.	You Y, Wu X-L, Yin Y-X, Guo Y-G (2014) High-quality Prussian blue crystals as superior cathode materials for roomtemperature sodium-ion batteries. Energ Environ Sci 7: 1643 -1647. https://doi.org/10.1039/C3EE44004D	You Y, Wu X-L, Yin Y-X, Guo Y-G (2014) High-quality Prussian blue crystals as superior cathode materials for roomtemperature sodium-ion batteries. Energ Environ Sci 7: 1643 -1647.
39	16	15	530	#/texts/505	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p39:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.79, 635.59, 215.45, 27.36]	Yu H, Ishikawa R, So Y-G, Shibata N, Kudo T, Zhou H, Ikuhara Y (2013) Direct atomic-resolution observation of two phases in the Li1.2Mn0.567Ni0.166Co0.067O2 cathode material for	Yu H, Ishikawa R, So Y-G, Shibata N, Kudo T, Zhou H, Ikuhara Y (2013) Direct atomic-resolution observation of two phases in the Li1.2Mn0.567Ni0.166Co0.067O2 cathode material for	Yu H, Ishikawa R, So Y-G, Shibata N, Kudo T, Zhou H, Ikuhara Y (2013) Direct atomic-resolution observation of two phases in the Li1.2Mn0.567Ni0.166Co0.067O2 cathode material for	Yu H, Ishikawa R, So Y-G, Shibata N, Kudo T, Zhou H, Ikuhara Y (2013) Direct atomic-resolution observation of two phases in the Li1.2Mn0.567Ni0.166Co0.067O2 cathode material for
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39	17	17	532	#/texts/506	list_item	page_margin_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p39:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[301.85, 53.86, 198.49, 18.86]	lithium-ion batteries. Angew Chem Int Ed 52:5969 -5973. https://doi.org/10.1002/anie.201301236	lithium-ion batteries. Angew Chem Int Ed 52:5969 -5973.	lithium-ion batteries. Angew Chem Int Ed 52:5969 -5973. https://doi.org/10.1002/anie.201301236	lithium-ion batteries. Angew Chem Int Ed 52:5969 -5973.
39	18	18	533	#/texts/507	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 75.4, 215.47, 47.54]	Yu T, Lin B, Li Q, Wang X, Qu W, Zhang S, Deng C (2016) First exploration of freestanding and flexible Na2+2xFe2x(SO4)3@porous carbon nanofiber hybrid films with superior sodium intercalation for sodium ion batteries. P…	Yu T, Lin B, Li Q, Wang X, Qu W, Zhang S, Deng C (2016) First exploration of freestanding and flexible Na2+2xFe2x(SO4)3@porous carbon nanofiber hybrid films with superior sodium intercalation for sodium ion batteries. P…	Yu T, Lin B, Li Q, Wang X, Qu W, Zhang S, Deng C (2016) First exploration of freestanding and flexible Na2+2xFe2x(SO4)3@porous carbon nanofiber hybrid films with superior sodium intercalation for sodium ion batteries. PCCP 18: 26933 -26941. https://doi.org/10.1039/C6CP04958C	Yu T, Lin B, Li Q, Wang X, Qu W, Zhang S, Deng C (2016) First exploration of freestanding and flexible Na2+2xFe2x(SO4)3@porous carbon nanofiber hybrid films with superior sodium intercalation for sodium ion batteries. PCCP 18: 26933 -26941.
39	19	19	534	#/texts/508	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.87, 125.47, 215.52, 47.37]	Zaghib K, Trottier J, Hovington P, Brochu F, Guerfi A, Mauger A, Julien CM (2011) Characterization of Na-based phosphate as electrode materials for electrochemical cells. J Power Sources 196:9612 -9617. h t t p s : / / …	Zaghib K, Trottier J, Hovington P, Brochu F, Guerfi A, Mauger A, Julien CM (2011) Characterization of Na-based phosphate as electrode materials for electrochemical cells. J Power Sources 196:9612 -9617. h t t p s : / / …	Zaghib K, Trottier J, Hovington P, Brochu F, Guerfi A, Mauger A, Julien CM (2011) Characterization of Na-based phosphate as electrode materials for electrochemical cells. J Power Sources 196:9612 -9617. h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . jpowsour.2011.06.061	Zaghib K, Trottier J, Hovington P, Brochu F, Guerfi A, Mauger A, Julien CM (2011) Characterization of Na-based phosphate as electrode materials for electrochemical cells. J Power Sources 196:9612 -9617. h t t p s : / / d o i . o r g / 1 0 . 1 0 1 6 / j . jpowsour.2011.06.061
39	20	20	535	#/texts/509	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 175.46, 215.53, 47.37]	Zhang L, Wu HB, Madhavi S, Hng HH, Lou XW (2012) Formation of Fe2O3 microboxes with hierarchical shell structures from metal -organic frameworks and their lithium storage properties. J Am Chem Soc 134:17388 -17391. http…	Zhang L, Wu HB, Madhavi S, Hng HH, Lou XW (2012) Formation of Fe2O3 microboxes with hierarchical shell structures from metal -organic frameworks and their lithium storage properties. J Am Chem Soc 134:17388 -17391.	Zhang L, Wu HB, Madhavi S, Hng HH, Lou XW (2012) Formation of Fe2O3 microboxes with hierarchical shell structures from metal -organic frameworks and their lithium storage properties. J Am Chem Soc 134:17388 -17391. https://doi.org/10.1021/ja307475c	Zhang L, Wu HB, Madhavi S, Hng HH, Lou XW (2012) Formation of Fe2O3 microboxes with hierarchical shell structures from metal -organic frameworks and their lithium storage properties. J Am Chem Soc 134:17388 -17391.
39	21	21	536	#/texts/510	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 225.52, 215.49, 37.34]	Zhang X, Cheng F, Yang J, Chen J (2013a) LiNi0.5Mn1.5O4 porous nanorods as high-rate and long-life cathodes for Liion batteries. Nano Lett 13:2822 -2825. https://doi. org/10.1021/nl401072x	Zhang X, Cheng F, Yang J, Chen J (2013a) LiNi0.5Mn1.5O4 porous nanorods as high-rate and long-life cathodes for Liion batteries. Nano Lett 13:2822 -2825. org/10.1021/nl401072x	Zhang X, Cheng F, Yang J, Chen J (2013a) LiNi0.5Mn1.5O4 porous nanorods as high-rate and long-life cathodes for Liion batteries. Nano Lett 13:2822 -2825. https://doi. org/10.1021/nl401072x	Zhang X, Cheng F, Yang J, Chen J (2013a) LiNi0.5Mn1.5O4 porous nanorods as high-rate and long-life cathodes for Liion batteries. Nano Lett 13:2822 -2825. org/10.1021/nl401072x
39	22	22	537	#/texts/511	list_item	body_candidate_excluded	False	medium	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 265.48, 215.49, 37.4]	Zhang X, Cheng F, Yang J, Chen J (2013b) LiNi(0.5)Mn(1.5)O4 porous nanorods as high-rate and long-life cathodes for Liion batteries. Nano Lett 13:2822 -2825. https://doi. org/10.1021/nl401072x	Zhang X, Cheng F, Yang J, Chen J (2013b) LiNi(0.5)Mn(1.5)O4 porous nanorods as high-rate and long-life cathodes for Liion batteries. Nano Lett 13:2822 -2825. org/10.1021/nl401072x	Zhang X, Cheng F, Yang J, Chen J (2013b) LiNi(0.5)Mn(1.5)O4 porous nanorods as high-rate and long-life cathodes for Liion batteries. Nano Lett 13:2822 -2825. https://doi. org/10.1021/nl401072x	Zhang X, Cheng F, Yang J, Chen J (2013b) LiNi(0.5)Mn(1.5)O4 porous nanorods as high-rate and long-life cathodes for Liion batteries. Nano Lett 13:2822 -2825. org/10.1021/nl401072x
39	23	23	538	#/texts/512	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 305.5, 215.49, 37.4]	Zhang K, Han X, Hu Z, Zhang X, Tao Z, Chen J (2015a) Nanostructured Mn-based oxides for electrochemical energy storage and conversion. Chem Soc Rev 44:699 -728. https://doi.org/10.1039/C4CS00218K	Zhang K, Han X, Hu Z, Zhang X, Tao Z, Chen J (2015a) Nanostructured Mn-based oxides for electrochemical energy storage and conversion. Chem Soc Rev 44:699 -728.	Zhang K, Han X, Hu Z, Zhang X, Tao Z, Chen J (2015a) Nanostructured Mn-based oxides for electrochemical energy storage and conversion. Chem Soc Rev 44:699 -728. https://doi.org/10.1039/C4CS00218K	Zhang K, Han X, Hu Z, Zhang X, Tao Z, Chen J (2015a) Nanostructured Mn-based oxides for electrochemical energy storage and conversion. Chem Soc Rev 44:699 -728.
39	24	24	539	#/texts/513	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 345.52, 215.48, 37.34]	Zhang L, Ni J, Wang W, Guo J, Li L (2015b) 3D porous hierarchical Li2FeSiO4/C for rechargeable lithium batteries. J Mater Chem A 3:11782 -11786. https://doi.org/10.1039/C5 TA02433A	Zhang L, Ni J, Wang W, Guo J, Li L (2015b) 3D porous hierarchical Li2FeSiO4/C for rechargeable lithium batteries. J Mater Chem A 3:11782 -11786.	Zhang L, Ni J, Wang W, Guo J, Li L (2015b) 3D porous hierarchical Li2FeSiO4/C for rechargeable lithium batteries. J Mater Chem A 3:11782 -11786. https://doi.org/10.1039/C5 TA02433A	Zhang L, Ni J, Wang W, Guo J, Li L (2015b) 3D porous hierarchical Li2FeSiO4/C for rechargeable lithium batteries. J Mater Chem A 3:11782 -11786.
39	25	25	540	#/texts/514	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 385.54, 215.52, 37.34]	Zhang Z et al (2017) First-principles computational studies on layered Na2Mn3O7 as a high-rate cathode material for sodium ion batteries. J Mater Chem A 5:12752 -12756. https://doi.org/10.1039/C7TA02609A	Zhang Z et al (2017) First-principles computational studies on layered Na2Mn3O7 as a high-rate cathode material for sodium ion batteries. J Mater Chem A 5:12752 -12756.	Zhang Z et al (2017) First-principles computational studies on layered Na2Mn3O7 as a high-rate cathode material for sodium ion batteries. J Mater Chem A 5:12752 -12756. https://doi.org/10.1039/C7TA02609A	Zhang Z et al (2017) First-principles computational studies on layered Na2Mn3O7 as a high-rate cathode material for sodium ion batteries. J Mater Chem A 5:12752 -12756.
39	26	26	541	#/texts/515	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 425.56, 215.54, 37.34]	Zhao J, Zhao L, Dimov N, Okada S, Nishida T (2013) Electrochemical and thermal properties of α -NaFeO2 cathode for Na-ion batteries. J Electrochem Soc 160:A3077 -A3081. https://doi.org/10.1149/2.007305jes	Zhao J, Zhao L, Dimov N, Okada S, Nishida T (2013) Electrochemical and thermal properties of α -NaFeO2 cathode for Na-ion batteries. J Electrochem Soc 160:A3077 -A3081.	Zhao J, Zhao L, Dimov N, Okada S, Nishida T (2013) Electrochemical and thermal properties of α -NaFeO2 cathode for Na-ion batteries. J Electrochem Soc 160:A3077 -A3081. https://doi.org/10.1149/2.007305jes	Zhao J, Zhao L, Dimov N, Okada S, Nishida T (2013) Electrochemical and thermal properties of α -NaFeO2 cathode for Na-ion batteries. J Electrochem Soc 160:A3077 -A3081.
39	27	27	542	#/texts/516	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 465.52, 215.41, 27.36]	Zhao Y, Peng L, Liu B, Yu G (2014) Single-crystalline LiFePO4 nanosheets for high-rate Li-Ion batteries. Nano Lett 14:2849 -2853. https://doi.org/10.1021/nl5008568	Zhao Y, Peng L, Liu B, Yu G (2014) Single-crystalline LiFePO4 nanosheets for high-rate Li-Ion batteries. Nano Lett 14:2849 -2853.	Zhao Y, Peng L, Liu B, Yu G (2014) Single-crystalline LiFePO4 nanosheets for high-rate Li-Ion batteries. Nano Lett 14:2849 -2853. https://doi.org/10.1021/nl5008568	Zhao Y, Peng L, Liu B, Yu G (2014) Single-crystalline LiFePO4 nanosheets for high-rate Li-Ion batteries. Nano Lett 14:2849 -2853.
39	28	28	543	#/texts/517	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 495.57, 215.38, 27.36]	Zheng J et al (2017) Liand Mn-Rich Cathode Materials: Challenges to Commercialization. Adv Energy Mater 7: 1601284. https://doi.org/10.1002/aenm.201601284	Zheng J et al (2017) Liand Mn-Rich Cathode Materials: Challenges to Commercialization. Adv Energy Mater 7: 1601284.	Zheng J et al (2017) Liand Mn-Rich Cathode Materials: Challenges to Commercialization. Adv Energy Mater 7: 1601284. https://doi.org/10.1002/aenm.201601284	Zheng J et al (2017) Liand Mn-Rich Cathode Materials: Challenges to Commercialization. Adv Energy Mater 7: 1601284.
39	29	29	544	#/texts/518	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 525.55, 215.43, 37.4]	Zhong QM, Bonakdarpour A, Zhang MJ, Gao Y, Dahn JR (1997) Synthesis and electrochemistry of LiNixMn2-xO4. J Electrochem Soc 144:205 -213. https://doi.org/10.1149 /1.1837386	Zhong QM, Bonakdarpour A, Zhang MJ, Gao Y, Dahn JR (1997) Synthesis and electrochemistry of LiNixMn2-xO4. J Electrochem Soc 144:205 -213.	Zhong QM, Bonakdarpour A, Zhang MJ, Gao Y, Dahn JR (1997) Synthesis and electrochemistry of LiNixMn2-xO4. J Electrochem Soc 144:205 -213. https://doi.org/10.1149 /1.1837386	Zhong QM, Bonakdarpour A, Zhang MJ, Gao Y, Dahn JR (1997) Synthesis and electrochemistry of LiNixMn2-xO4. J Electrochem Soc 144:205 -213.
39	30	30	545	#/texts/519	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 565.58, 215.44, 37.34]	Zhou F, Kang K, Maxisch T, Ceder G, Morgan D (2004) The electronic structure and band gap of LiFePO4 and LiMnPO4. Solid State Commun 132:181 -186. https://doi.org/10.1016/j. ssc.2004.07.055	Zhou F, Kang K, Maxisch T, Ceder G, Morgan D (2004) The electronic structure and band gap of LiFePO4 and LiMnPO4. Solid State Commun 132:181 -186.	Zhou F, Kang K, Maxisch T, Ceder G, Morgan D (2004) The electronic structure and band gap of LiFePO4 and LiMnPO4. Solid State Commun 132:181 -186. https://doi.org/10.1016/j. ssc.2004.07.055	Zhou F, Kang K, Maxisch T, Ceder G, Morgan D (2004) The electronic structure and band gap of LiFePO4 and LiMnPO4. Solid State Commun 132:181 -186.
39	31	31	546	#/texts/520	list_item	metadata	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.91, 605.6, 215.48, 37.34]	Zhou L, Zhao D, Lou X (2012) LiNi0.5Mn1.5O4 hollow structures as high-performance cathodes for lithium-ion batteries. Angew Chem Int Ed 51:239 -241. https://doi.org/10.1002 /anie.201106998	Zhou L, Zhao D, Lou X (2012) LiNi0.5Mn1.5O4 hollow structures as high-performance cathodes for lithium-ion batteries. Angew Chem Int Ed 51:239 -241.	Zhou L, Zhao D, Lou X (2012) LiNi0.5Mn1.5O4 hollow structures as high-performance cathodes for lithium-ion batteries. Angew Chem Int Ed 51:239 -241. https://doi.org/10.1002 /anie.201106998	Zhou L, Zhao D, Lou X (2012) LiNi0.5Mn1.5O4 hollow structures as high-performance cathodes for lithium-ion batteries. Angew Chem Int Ed 51:239 -241.
39	32	32	547	#/texts/521	list_item	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p39:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.9, 645.62, 215.42, 17.33]	Zhou L et al (2017) Recent Developments on and prospects for electrode materials with hierarchical structures for lithium-	Zhou L et al (2017) Recent Developments on and prospects for electrode materials with hierarchical structures for lithium-	Zhou L et al (2017) Recent Developments on and prospects for electrode materials with hierarchical structures for lithium-	Zhou L et al (2017) Recent Developments on and prospects for electrode materials with hierarchical structures for lithium-
40	1	1	548	#/texts/522	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_1_of_2	1	2	p40:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 34.25, 12.51, 7.44]	160	160	160	160
40	2	2	549	#/texts/523	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_1_of_2	1	2	p40:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[67.64, 34.25, 46.28, 7.35]	Page 40 of 40	Page 40 of 40	Page 40 of 40	Page 40 of 40
40	4	3	550	#/texts/525	list_item	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p40:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[63.72, 55.45, 198.5, 17.33]	ion batteries. Adv Energy Mater 8(6):1701415. https://doi. org/10.1002/aenm.201701415	ion batteries. Adv Energy Mater 8(6):1701415. org/10.1002/aenm.201701415	ion batteries. Adv Energy Mater 8(6):1701415. https://doi. org/10.1002/aenm.201701415	ion batteries. Adv Energy Mater 8(6):1701415. org/10.1002/aenm.201701415
40	5	4	551	#/texts/526	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p40:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.77, 75.46, 215.5, 47.37]	Zhu Y, Xu Y, Liu Y, Luo C, Wang C (2013) Comparison of electrochemical performances of olivine NaFePO4 in sodium-ion batteries and olivine LiFePO4 in lithium-ion batteries. Nanoscale 5:780 -787. https://doi.org/10.1039/…	Zhu Y, Xu Y, Liu Y, Luo C, Wang C (2013) Comparison of electrochemical performances of olivine NaFePO4 in sodium-ion batteries and olivine LiFePO4 in lithium-ion batteries. Nanoscale 5:780 -787.	Zhu Y, Xu Y, Liu Y, Luo C, Wang C (2013) Comparison of electrochemical performances of olivine NaFePO4 in sodium-ion batteries and olivine LiFePO4 in lithium-ion batteries. Nanoscale 5:780 -787. https://doi.org/10.1039/C2 NR32758A	Zhu Y, Xu Y, Liu Y, Luo C, Wang C (2013) Comparison of electrochemical performances of olivine NaFePO4 in sodium-ion batteries and olivine LiFePO4 in lithium-ion batteries. Nanoscale 5:780 -787.
40	6	5	552	#/texts/527	list_item	affiliation	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_1_of_2	1	2	p40:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[46.78, 125.46, 215.43, 17.39]	Zhu X, Li X, Zhu Y, Jin S, Wang Y, Qian Y (2014a) LiNi0.5Mn1.5O4 nanostructures with two-phase intergrowth	Zhu X, Li X, Zhu Y, Jin S, Wang Y, Qian Y (2014a) LiNi0.5Mn1.5O4 nanostructures with two-phase intergrowth	Zhu X, Li X, Zhu Y, Jin S, Wang Y, Qian Y (2014a) LiNi0.5Mn1.5O4 nanostructures with two-phase intergrowth	Zhu X, Li X, Zhu Y, Jin S, Wang Y, Qian Y (2014a) LiNi0.5Mn1.5O4 nanostructures with two-phase intergrowth
40	3	6	553	#/texts/524	page_header	page_header	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	top_margin	column_2_of_2	2	2	p40:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[398.16, 34.25, 102.12, 7.35]	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160	J Nanopart Res (2018) 20: 160
40	7	7	554	#/texts/528	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p40:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[301.83, 55.44, 198.49, 27.36]	as enhanced cathodes for lithium-ion batteries. Electrochim Acta 121:253 -257. https://doi.org/10.1016/j. electacta.2013.12.176	as enhanced cathodes for lithium-ion batteries. Electrochim Acta 121:253 -257. electacta.2013.12.176	as enhanced cathodes for lithium-ion batteries. Electrochim Acta 121:253 -257. https://doi.org/10.1016/j. electacta.2013.12.176	as enhanced cathodes for lithium-ion batteries. Electrochim Acta 121:253 -257. electacta.2013.12.176
40	8	8	555	#/texts/529	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	page_body	column_2_of_2	2	2	p40:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[284.88, 86.45, 215.46, 47.37]	Zhu X, Li X, Zhu Y, Jin S, Wang Y, Qian Y (2014b) Porous LiNi0.5Mn1.5O4 microspheres with different pore conditions: preparation and application as cathode materials for lithium-ion batteries. J Power Sources 261:93 -10…	Zhu X, Li X, Zhu Y, Jin S, Wang Y, Qian Y (2014b) Porous LiNi0.5Mn1.5O4 microspheres with different pore conditions: preparation and application as cathode materials for lithium-ion batteries. J Power Sources 261:93 -10…	Zhu X, Li X, Zhu Y, Jin S, Wang Y, Qian Y (2014b) Porous LiNi0.5Mn1.5O4 microspheres with different pore conditions: preparation and application as cathode materials for lithium-ion batteries. J Power Sources 261:93 -100. https://doi.org/10.1016/j.jpowsour.2014.03.047	Zhu X, Li X, Zhu Y, Jin S, Wang Y, Qian Y (2014b) Porous LiNi0.5Mn1.5O4 microspheres with different pore conditions: preparation and application as cathode materials for lithium-ion batteries. J Power Sources 261:93 -100.
