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	docling_page_header	docling_page_header						True	p1:body_region:1	top_margin	column_2_of_2	2	2	p1:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[224.72, 33.45, 145.08, 11.73]	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437
1	2	2	1	#/texts/1	section_header	front_matter_heading	False	low	first_page_metadata	first_page_metadata						True	p1:body_region:1	front_matter	column_2_of_2	2	2	p1:front_matter:front_panel:gray	[230, 230, 230]	gray	True	False	[228.42, 63.48, 142.99, 7.31]	Contents lists available at ScienceDirect	Contents lists available at ScienceDirect	Contents lists available at ScienceDirect	Contents lists available at ScienceDirect
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:1	front_matter	column_2_of_2	2	2	p1:front_matter:front_panel:gray	[230, 230, 230]	gray	True	False	[219.29, 87.36, 163.01, 12.79]	Journal of Power Sources	Journal of Power Sources	Journal of Power Sources	Journal of Power Sources
1	4	4	3	#/texts/3	text	front_matter_heading	False	low	first_page_metadata	first_page_metadata						True	p1:body_region:1	front_matter	column_2_of_2	2	2	p1:front_matter:front_panel:gray	[230, 230, 230]	gray	True	False	[195.48, 119.22, 208.78, 6.67]	journal homepage: www.elsevier.com/locate/jpowsour	journal homepage:	journal homepage: www.elsevier.com/locate/jpowsour	journal homepage:
1	5	5	4	#/texts/4	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	[37.59, 168.03, 450.29, 46.81]	Efficient improvement in electrochemical properties of high-voltage Li-rich Mn-based layered oxide cathode by addition of 1,3-divinyltetramethyldisiloxane to electrolyte	Efficient improvement in electrochemical properties of high-voltage Li-rich Mn-based layered oxide cathode by addition of 1,3-divinyltetramethyldisiloxane to electrolyte	Efficient improvement in electrochemical properties of high-voltage Li-rich Mn-based layered oxide cathode by addition of 1,3-divinyltetramethyldisiloxane to electrolyte	Efficient improvement in electrochemical properties of high-voltage Li-rich Mn-based layered oxide cathode by addition of 1,3-divinyltetramethyldisiloxane to electrolyte
1	6	6	5	#/texts/5	text	affiliation	False	low	first_page_author_or_affiliation	first_page_author_or_affiliation						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	[37.59, 229.44, 339.84, 9.69]	Tao Huang, Xiangzhen Zheng, Chunfeng Yan, Ying Pan , Maoxiang Wu	Tao Huang, Xiangzhen Zheng, Chunfeng Yan, Ying Pan , Maoxiang Wu	Tao Huang, Xiangzhen Zheng, Chunfeng Yan, Ying Pan , Maoxiang Wu	Tao Huang, Xiangzhen Zheng, Chunfeng Yan, Ying Pan , Maoxiang Wu
1	8	7	6	#/texts/7	text	affiliation	False	low	first_page_author_or_affiliation	first_page_author_or_affiliation						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	[37.59, 248.69, 437.99, 5.85]	Key Laboratory of Optoelectronic Materials Chemistry and Physics, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou,	Key Laboratory of Optoelectronic Materials Chemistry and Physics, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou,	Key Laboratory of Optoelectronic Materials Chemistry and Physics, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou,	Key Laboratory of Optoelectronic Materials Chemistry and Physics, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou,
1	9	8	7	#/texts/8	text	unknown_text	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	[37.59, 257.25, 56.39, 5.85]	350002, PR China	350002, PR China	350002, PR China	350002, PR China
1	10	9	8	#/texts/9	section_header	front_matter_heading	False	low	front_matter_heading	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	[37.59, 289.44, 75.13, 6.4]	H I G H L I G H T S	H I G H L I G H T S	H I G H L I G H T S	H I G H L I G H T S
1	11	10	9	#/texts/10	list_item	front_matter_candidate	False	low	outside_body_flow_list_item	outside_body_flow_list_item						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	[37.59, 308.87, 231.27, 6.58]	DTMS improved cyclic stability of LRM cathode lithium-ion batteries.	DTMS improved cyclic stability of LRM cathode lithium-ion batteries.	DTMS improved cyclic stability of LRM cathode lithium-ion batteries.	DTMS improved cyclic stability of LRM cathode lithium-ion batteries.
1	12	11	10	#/texts/11	list_item	unknown_text	False	medium	outside_body_flow_list_item	outside_body_flow_list_item						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	[37.59, 318.9, 179.65, 6.58]	The DTMS-derived layer maintains interface stability.	The DTMS-derived layer maintains interface stability.	The DTMS-derived layer maintains interface stability.	The DTMS-derived layer maintains interface stability.
1	13	12	11	#/texts/12	list_item	front_matter_candidate	False	low	outside_body_flow_list_item	outside_body_flow_list_item						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	[37.59, 328.99, 170.36, 6.58]	DTMS reacts with the HF/F from the electrolyte.	DTMS reacts with the HF/F from the electrolyte.	DTMS reacts with the HF/F from the electrolyte.	DTMS reacts with the HF/F from the electrolyte.
1	14	13	12	#/texts/13	section_header	front_matter_heading	False	low	front_matter_heading	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	[37.59, 363.31, 88.53, 6.4]	A R T I C L E I N F O	A R T I C L E I N F O	A R T I C L E I N F O	A R T I C L E I N F O
1	20	14	13	#/texts/19	section_header	abstract_heading	False	low	abstract_heading	abstract_heading						True	p1:body_region:0	front_matter	column_2_of_2	2	2	p1:front_matter:column_2_of_2:white	[255, 255, 255]	white	False	False	[202.0, 363.31, 67.15, 6.4]	A B S T R A C T	A B S T R A C T	A B S T R A C T	A B S T R A C T
1	15	15	14	#/texts/14	text	front_matter_heading	False	low	front_matter_heading	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	[37.59, 382.2, 93.07, 40.15]	Keywords: Lithium-ion battery Li-rich layered oxide cathode Solid electrolyte interphase film Interfacial stability	Keywords: Lithium-ion battery Li-rich layered oxide cathode Solid electrolyte interphase film Interfacial stability	Keywords: Lithium-ion battery Li-rich layered oxide cathode Solid electrolyte interphase film Interfacial stability	Keywords: Lithium-ion battery Li-rich layered oxide cathode Solid electrolyte interphase film Interfacial stability
1	16	16	15	#/texts/15	text	unknown_text	False	medium	inside_front_matter	inside_front_matter						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	[37.59, 425.06, 94.03, 5.85]	1,3-divinyltetramethyldisiloxane	1,3-divinyltetramethyldisiloxane	1,3-divinyltetramethyldisiloxane	1,3-divinyltetramethyldisiloxane
1	21	17	16	#/texts/20	text	front_matter_candidate	False	low	first_page_summary	first_page_summary						True	p1:body_region:1	front_matter	column_2_of_2	2	2	p1:front_matter:column_2_of_2:white	[255, 255, 255]	white	False	False	[202.0, 382.68, 357.8, 73.53]	1,3-Divinyltetramethyldisiloxane (DTMS) is a multifunctional additive that is used to improves the cycling stability and capacity retention of Li-rich Mn-based layered oxide cathodes (LRMs). Cycling performance evaluati…	1,3-Divinyltetramethyldisiloxane (DTMS) is a multifunctional additive that is used to improves the cycling stability and capacity retention of Li-rich Mn-based layered oxide cathodes (LRMs). Cycling performance evaluati…	1,3-Divinyltetramethyldisiloxane (DTMS) is a multifunctional additive that is used to improves the cycling stability and capacity retention of Li-rich Mn-based layered oxide cathodes (LRMs). Cycling performance evaluations demonstrate that LRM/Li cells without the additive exhibit lower capacity retention. DTMS can significantly improve the capacity retention of LRM/Li cells from 42.8% to 75% at 0.5C. Theoretical calculations indicate that DTMS is preferentially oxidized on the LRM surface. Physical characterization results reveal that DTMS generates a layer on the LRM surface that is both less resistive and thinner than the LRM by reacting with HF/F from the electrolyte. This DTMS-derived layer inhibits adverse reactions between the cathode and electrolyte, thus, effectively maintaining the cathode structure.	1,3-Divinyltetramethyldisiloxane (DTMS) is a multifunctional additive that is used to improves the cycling stability and capacity retention of Li-rich Mn-based layered oxide cathodes (LRMs). Cycling performance evaluations demonstrate that LRM/Li cells without the additive exhibit lower capacity retention. DTMS can significantly improve the capacity retention of LRM/Li cells from 42.8% to 75% at 0.5C. Theoretical calculations indicate that DTMS is preferentially oxidized on the LRM surface. Physical characterization results reveal that DTMS generates a layer on the LRM surface that is both less resistive and thinner than the LRM by reacting with HF/F from the electrolyte. This DTMS-derived layer inhibits adverse reactions between the cathode and electrolyte, thus, effectively maintaining the cathode structure.
1	17	18	17	#/texts/16	section_header	body_heading	False	low	body_heading	body_heading						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	[37.59, 488.79, 62.58, 7.31]	1. Introduction	1. Introduction	1. Introduction	1. Introduction
1	19	20	19	#/texts/18	footnote	footnote	False	low	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	[42.63, 672.84, 153.92, 16.16]	* Corresponding author. E-mail address: mxwu@fjirsm.ac.cn (M. Wu).	* Corresponding author. E-mail address: mxwu@fjirsm.ac.cn (M. Wu).	* Corresponding author. E-mail address: mxwu@fjirsm.ac.cn (M. Wu).	* Corresponding author. E-mail address: mxwu@fjirsm.ac.cn (M. Wu).
1	24	21	20	#/texts/23	page_footer	page_footer	False	low	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	[254, 254, 254]	white	False	False	[37.59, 699.43, 160.64, 6.58]	https://doi.org/10.1016/j.jpowsour.2023.233437		https://doi.org/10.1016/j.jpowsour.2023.233437	
1	25	22	21	#/texts/24	page_footer	page_footer	False	low	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	[37.52, 708.95, 299.92, 17.48]	Available online 26 July 2023 Received 28 February 2023; Received in revised form 7 June 2023; Accepted 17 July 2023	Available online 26 July 2023 Received 28 February 2023; Received in revised form 7 June 2023; Accepted 17 July 2023	Available online 26 July 2023 Received 28 February 2023; Received in revised form 7 June 2023; Accepted 17 July 2023	Available online 26 July 2023 Received 28 February 2023; Received in revised form 7 June 2023; Accepted 17 July 2023
1	26	23	22	#/texts/25	page_footer	page_footer	False	low	first_page_metadata	first_page_metadata						True	p1:body_region:0	bottom_margin	column_1_of_2	1	2	p1:bottom_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.52, 724.32, 167.09, 11.73]	0378-7753/© 2023 Elsevier B.V. All rights reserved.	0378-7753/© 2023 Elsevier B.V. All rights reserved.	0378-7753/© 2023 Elsevier B.V. All rights reserved.	0378-7753/© 2023 Elsevier B.V. All rights reserved.
1	7	24	23	#/texts/6	text	unknown_text	False	medium	empty_after_cleaning	empty_after_cleaning						True	p1:body_region:1	front_matter	column_2_of_2	2	2	p1:front_matter:column_2_of_2:white	[255, 255, 255]	white	False	False	[379.16, 226.86, 6.28, 6.78]	*		*	
2	1	1	26	#/texts/26	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p2:body_region:1	top_margin	column_2_of_2	2	2	p2:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[433.38, 33.65, 124.91, 10.42]	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437
2	2	2	27	#/texts/27	text	page_margin_header	False	low	page_margin_header	page_margin_header						True	p2:body_region:0	top_margin	column_1_of_2	1	2	p2:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 37.0, 463.07, 5.85]	T. Huang et al.	T. Huang et al.	T. Huang et al.	T. Huang et al.
2	5	5	30	#/texts/30	section_header	body_heading	False	low	body_heading	body_heading						True	p2:body_region:0	body_zone	column_1_of_2	1	2	p2:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 453.13, 58.23, 7.31]	2. Experiment	2. Experiment	2. Experiment	2. Experiment
2	6	6	31	#/texts/31	section_header	body_heading	False	low	body_heading	body_heading						True	p2:body_region:0	body_zone	column_1_of_2	1	2	p2:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 474.05, 158.65, 7.31]	2.1. Preparation of electrolytes and electrodes	2.1. Preparation of electrolytes and electrodes	2.1. Preparation of electrolytes and electrodes	2.1. Preparation of electrolytes and electrodes
2	9	9	34	#/texts/34	section_header	body_heading	False	low	body_heading	body_heading						True	p2:body_region:0	body_zone	column_1_of_2	1	2	p2:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 652.4, 96.4, 7.31]	2.2. Electrochemical testing	2.2. Electrochemical testing	2.2. Electrochemical testing	2.2. Electrochemical testing
2	11	11	36	#/texts/36	caption	caption	False	low	docling_caption	docling_caption						True	p2:body_region:1	top_margin	column_2_of_2	2	2	p2:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[366.12, 56.3, 79.26, 16.16]	Table 1 Calculated Eox (V vs. Li +	Table 1 Calculated Eox (V vs. Li +	Table 1 Calculated Eox (V vs. Li +	Table 1 Calculated Eox (V vs. Li +
2	14	14	39	#/texts/39	section_header	body_heading	False	low	body_heading	body_heading						True	p2:body_region:1	body_zone	column_2_of_2	2	2	p2:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 197.1, 104.56, 7.31]	2.3. Physical characterization	2.3. Physical characterization	2.3. Physical characterization	2.3. Physical characterization
2	16	16	41	#/texts/41	section_header	body_heading	False	low	body_heading	body_heading						True	p2:body_region:1	body_zone	column_2_of_2	2	2	p2:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 313.49, 61.58, 7.31]	2.4. Calculations	2.4. Calculations	2.4. Calculations	2.4. Calculations
2	19	19	44	#/texts/44	section_header	body_heading	False	low	body_heading	body_heading						True	p2:body_region:1	body_zone	column_2_of_2	2	2	p2:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 420.93, 100.96, 7.31]	3. Results and discussion	3. Results and discussion	3. Results and discussion	3. Results and discussion
2	20	20	45	#/texts/45	section_header	body_heading	False	low	body_heading	body_heading						True	p2:body_region:1	body_zone	column_2_of_2	2	2	p2:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 441.84, 114.37, 7.31]	3.1. Oxidative stability of DTMS	3.1. Oxidative stability of DTMS	3.1. Oxidative stability of DTMS	3.1. Oxidative stability of DTMS
2	22	22	47	#/texts/47	section_header	body_heading	False	low	body_heading	body_heading						True	p2:body_region:1	body_zone	column_2_of_2	2	2	p2:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 641.91, 167.94, 7.31]	3.2. Impact of DTMS at electrochemical perform	3.2. Impact of DTMS at electrochemical perform	3.2. Impact of DTMS at electrochemical perform	3.2. Impact of DTMS at electrochemical perform
2	23	23	48	#/texts/48#prov0	text	back_matter_heading	False	low	early_back_matter_heading	early_back_matter_heading						True	p2:body_region:1	bottom_margin	column_2_of_2	2	2	p2:bottom_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 662.83, 253.42, 80.56]	Supplementary Material. 2 shows the charge -discharge curve performance of LRM/Li cells with and without 2 vol% DTMS electrolytes during the first pre-cycle process. It can be found that the cells in the 2 vol% DTMS-con…	Supplementary Material. 2 shows the charge -discharge curve performance of LRM/Li cells with and without 2 vol% DTMS electrolytes during the first pre-cycle process. It can be found that the cells in the 2 vol% DTMS-con…	Supplementary Material. 2 shows the charge -discharge curve performance of LRM/Li cells with and without 2 vol% DTMS electrolytes during the first pre-cycle process. It can be found that the cells in the 2 vol% DTMS-containing electrolyte have a large charge capacity of 321.2 mAh g 1 and that they delivered a lower coulombic efficiency (92.5%) than the cells in the BE electrolyte (97.2%). This may be due to DTMS oxidation occurring prior to that of electrolyte solvents. Fig. 2 presents the comparison of the cycling performance of LRM/Li cells in the	Supplementary Material. 2 shows the charge -discharge curve performance of LRM/Li cells with and without 2 vol% DTMS electrolytes during the first pre-cycle process. It can be found that the cells in the 2 vol% DTMS-containing electrolyte have a large charge capacity of 321.2 mAh g 1 and that they delivered a lower coulombic efficiency (92.5%) than the cells in the BE electrolyte (97.2%). This may be due to DTMS oxidation occurring prior to that of electrolyte solvents. Fig. 2 presents the comparison of the cycling performance of LRM/Li cells in the
2	24	24	49	#/texts/49	page_footer	page_footer	False	low	docling_page_footer	docling_page_footer						False	None	bottom_margin	column_2_of_2	2	2	p2:bottom_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[296.21, 754.45, 3.59, 10.42]	2	2	2	2
3	2	1	50	#/texts/50	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p3:body_region:1	top_margin	column_2_of_2	2	2	p3:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[433.38, 33.65, 124.91, 10.42]	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437
3	1	2	51	#/texts/48#prov1	text	page_margin_header	False	low	page_margin_header	page_margin_header						True	p3:body_region:0	top_margin	column_1_of_2	1	2	p3:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 36.99, 463.07, 5.85]	T. Huang et al.	T. Huang et al.	T. Huang et al.	T. Huang et al.
3	3	3	52	#/texts/51	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_2_of_2	2	2	p3:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[179.09, 187.18, 241.32, 8.3]	Fig. 1. Optimized structures and Eb values of solvents-Li + and DTMS-Li + .	Fig. 1. Optimized structures and Eb values of solvents-Li + and DTMS-Li + .	Fig. 1. Optimized structures and Eb values of solvents-Li + and DTMS-Li + .	Fig. 1. Optimized structures and Eb values of solvents-Li + and DTMS-Li + .
3	4	4	53	#/texts/52	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	[38.95, 472.99, 521.55, 6.58]	Fig. 2. (a) Cycling performance and (b) rate capability of LRM/Li cell. (c) (d) 1st, 20th, 50th, and 100th charge -discharge curves of LRM/Li cell during cycling.	Fig. 2. (a) Cycling performance and (b) rate capability of LRM/Li cell. (c) (d) 1st, 20th, 50th, and 100th charge -discharge curves of LRM/Li cell during cycling.	Fig. 2. (a) Cycling performance and (b) rate capability of LRM/Li cell. (c) (d) 1st, 20th, 50th, and 100th charge -discharge curves of LRM/Li cell during cycling.	Fig. 2. (a) Cycling performance and (b) rate capability of LRM/Li cell. (c) (d) 1st, 20th, 50th, and 100th charge -discharge curves of LRM/Li cell during cycling.
3	5	5	54	#/texts/53	text	body_candidate_excluded	False	high	inside_back_matter	inside_back_matter						True	p3:body_region:0	page_body	column_1_of_2	1	2	p3:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 494.91, 253.44, 174.67]	different electrolytes. The LRM/Li cells with 2 vol% DTMS showed great cycling stability. The discharge capacity of LRM/Li cells in the BE electrolyte decreased from 262.3 to 57.7 mAh g 1 after 100 cycles (57.2% capacit…	different electrolytes. The LRM/Li cells with 2 vol% DTMS showed great cycling stability. The discharge capacity of LRM/Li cells in the BE electrolyte decreased from 262.3 to 57.7 mAh g 1 after 100 cycles (57.2% capacit…	different electrolytes. The LRM/Li cells with 2 vol% DTMS showed great cycling stability. The discharge capacity of LRM/Li cells in the BE electrolyte decreased from 262.3 to 57.7 mAh g 1 after 100 cycles (57.2% capacity loss). However, in the 2 vol% DTMS-containing electrolyte, the discharge capacity decreased from 256.2 to 192.7 mAh g 1 (25% capacity loss). To estimate whether the Li/Li-rich cells with the DTMS-containing electrolyte are capable of fast charge transport, the rate capability of LRM/Li cells was evaluated. The Li/Li-rich cells with 2 vol% DTMS delivered a higher discharge capacity of 100 mAh g 1 at 5C. In contrast, the LRM/Li cells with the BE electrolyte exhibited substantial capacity loss. The 1st, 20th, 50th, and 100th charge -discharge curves of the LRM/Li cell during cycling are presented in Fig. 2c and d. An obvious decrease in the discharge capacity and voltage platform can be seen for the cell without additives during cycling, which may indicate increased interfacial instability. The charge and discharge capacities of LRM/Li cells in DTMS-containing electrolyte remained at a desirable level.	different electrolytes. The LRM/Li cells with 2 vol% DTMS showed great cycling stability. The discharge capacity of LRM/Li cells in the BE electrolyte decreased from 262.3 to 57.7 mAh g 1 after 100 cycles (57.2% capacity loss). However, in the 2 vol% DTMS-containing electrolyte, the discharge capacity decreased from 256.2 to 192.7 mAh g 1 (25% capacity loss). To estimate whether the Li/Li-rich cells with the DTMS-containing electrolyte are capable of fast charge transport, the rate capability of LRM/Li cells was evaluated. The Li/Li-rich cells with 2 vol% DTMS delivered a higher discharge capacity of 100 mAh g 1 at 5C. In contrast, the LRM/Li cells with the BE electrolyte exhibited substantial capacity loss. The 1st, 20th, 50th, and 100th charge -discharge curves of the LRM/Li cell during cycling are presented in Fig. 2c and d. An obvious decrease in the discharge capacity and voltage platform can be seen for the cell without additives during cycling, which may indicate increased interfacial instability. The charge and discharge capacities of LRM/Li cells in DTMS-containing electrolyte remained at a desirable level.
3	6	6	55	#/texts/54#prov0	text	body_candidate_excluded	False	high	inside_back_matter	inside_back_matter						True	p3:body_region:0	bottom_margin	column_1_of_2	1	2	p3:bottom_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 672.7, 253.44, 70.07]	EIS was carried out on LRM/Li cells after pre-cycling and cycling with the BE and 2 vol% DTMS-containing electrolytes, as shown in Fig. 3. The results can be divided into two parts: a depressed semicircle followed by a …	EIS was carried out on LRM/Li cells after pre-cycling and cycling with the BE and 2 vol% DTMS-containing electrolytes, as shown in Fig. 3. The results can be divided into two parts: a depressed semicircle followed by a …	EIS was carried out on LRM/Li cells after pre-cycling and cycling with the BE and 2 vol% DTMS-containing electrolytes, as shown in Fig. 3. The results can be divided into two parts: a depressed semicircle followed by a slanting line. The depressed semicircle contains two parts: the surface-film resistance (Rf) and the charge-transfer resistance (Rct) between the electrode and electrolyte. 24 The values in Fig. 3c reveal that the cell with the BE electrolyte shows a greater numerical variation	EIS was carried out on LRM/Li cells after pre-cycling and cycling with the BE and 2 vol% DTMS-containing electrolytes, as shown in Fig. 3. The results can be divided into two parts: a depressed semicircle followed by a slanting line. The depressed semicircle contains two parts: the surface-film resistance (Rf) and the charge-transfer resistance (Rct) between the electrode and electrolyte. 24 The values in Fig. 3c reveal that the cell with the BE electrolyte shows a greater numerical variation
3	7	7	56	#/texts/54#prov1	text	body_candidate_excluded	False	high	inside_back_matter	inside_back_matter						True	p3:body_region:1	page_body	column_2_of_2	2	2	p3:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.59, 494.91, 253.4, 38.66]	in Rf and Rct compared with the cells with the DTMS-containing electrolyte. The electrolyte decomposition substantially deteriorates the properties of the interface between the LRM and BE electrolyte and thereby reduces…	in Rf and Rct compared with the cells with the DTMS-containing electrolyte. The electrolyte decomposition substantially deteriorates the properties of the interface between the LRM and BE electrolyte and thereby reduces…	in Rf and Rct compared with the cells with the DTMS-containing electrolyte. The electrolyte decomposition substantially deteriorates the properties of the interface between the LRM and BE electrolyte and thereby reduces the cycling performance.	in Rf and Rct compared with the cells with the DTMS-containing electrolyte. The electrolyte decomposition substantially deteriorates the properties of the interface between the LRM and BE electrolyte and thereby reduces the cycling performance.
3	8	8	57	#/texts/55	text	body_candidate_excluded	False	high	inside_back_matter	inside_back_matter						True	p3:body_region:1	page_body	column_2_of_2	2	2	p3:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.59, 536.75, 253.43, 122.34]	The surface morphologies of the cathodes in the BE and DTMScontaining electrolytes were analyzed after cycling by SEM and TEM (Fig. 4). As shown in Fig. 4a, the cathode surface in the BE electrolyte was covered with a t…	The surface morphologies of the cathodes in the BE and DTMScontaining electrolytes were analyzed after cycling by SEM and TEM (Fig. 4). As shown in Fig. 4a, the cathode surface in the BE electrolyte was covered with a t…	The surface morphologies of the cathodes in the BE and DTMScontaining electrolytes were analyzed after cycling by SEM and TEM (Fig. 4). As shown in Fig. 4a, the cathode surface in the BE electrolyte was covered with a thick and uneven layer. The thickness is approximately 10 -15 nm. In contrast, the thickness of the cathode surface in the DTMS-containing electrolytes is only 2 -4 nm (Fig. 4b). After cycling, serious structure damage was found for the LRM particles in the BE electrolytes (Fig. 4c). These changes in surface morphology are most likely due to the HF continuous corrosion. The microstructure of the LRM particles in the DTMS-containing electrolytes was well maintained, as shown in Fig. 4d. It could be assumed the CEI layer was created by DTMS inhibiting HF corrosion on the cathode surface.	The surface morphologies of the cathodes in the BE and DTMScontaining electrolytes were analyzed after cycling by SEM and TEM (Fig. 4). As shown in Fig. 4a, the cathode surface in the BE electrolyte was covered with a thick and uneven layer. The thickness is approximately 10 -15 nm. In contrast, the thickness of the cathode surface in the DTMS-containing electrolytes is only 2 -4 nm (Fig. 4b). After cycling, serious structure damage was found for the LRM particles in the BE electrolytes (Fig. 4c). These changes in surface morphology are most likely due to the HF continuous corrosion. The microstructure of the LRM particles in the DTMS-containing electrolytes was well maintained, as shown in Fig. 4d. It could be assumed the CEI layer was created by DTMS inhibiting HF corrosion on the cathode surface.
3	9	9	58	#/texts/56	text	body_candidate_excluded	False	high	inside_back_matter	inside_back_matter						True	p3:body_region:1	bottom_margin	column_2_of_2	2	2	p3:bottom_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.59, 662.27, 253.42, 80.5]	Fig. 5a depicts the obtained XPS of LRM cells with BE and DMSEcontaining electrolytes after cycling. The C 1s peaks at 290.3 and 285.4 eV correspond to PVDF [19,25], and the peak at 284.6 eV is assigned to acetylene bla…	Fig. 5a depicts the obtained XPS of LRM cells with BE and DMSEcontaining electrolytes after cycling. The C 1s peaks at 290.3 and 285.4 eV correspond to PVDF [19,25], and the peak at 284.6 eV is assigned to acetylene bla…	Fig. 5a depicts the obtained XPS of LRM cells with BE and DMSEcontaining electrolytes after cycling. The C 1s peaks at 290.3 and 285.4 eV correspond to PVDF [19,25], and the peak at 284.6 eV is assigned to acetylene black [17]. Furthermore, the peak intensities of the PVDF and acetylene black of the LRM electrode in the BE electrolyte after cycling were higher than those in DTMS-containing electrolytes, which indicates that a thinner CEI film was formed with DTMS. The peaks corresponding to electrolyte decomposition products [19,25]	Fig. 5a depicts the obtained XPS of LRM cells with BE and DMSEcontaining electrolytes after cycling. The C 1s peaks at 290.3 and 285.4 eV correspond to PVDF [19,25], and the peak at 284.6 eV is assigned to acetylene black [17]. Furthermore, the peak intensities of the PVDF and acetylene black of the LRM electrode in the BE electrolyte after cycling were higher than those in DTMS-containing electrolytes, which indicates that a thinner CEI film was formed with DTMS. The peaks corresponding to electrolyte decomposition products [19,25]
3	10	10	59	#/texts/57	page_footer	page_footer	False	low	docling_page_footer	docling_page_footer						False	None	bottom_margin	column_2_of_2	2	2	p3:bottom_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[296.21, 754.45, 3.59, 10.42]	3	3	3	3
4	1	1	60	#/texts/58	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p4:body_region:1	top_margin	column_2_of_2	2	2	p4:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[433.38, 33.65, 124.91, 10.42]	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437
4	2	2	61	#/texts/59	text	page_margin_header	False	low	page_margin_header	page_margin_header						True	p4:body_region:0	top_margin	column_1_of_2	1	2	p4:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 36.99, 463.07, 5.85]	T. Huang et al.	T. Huang et al.	T. Huang et al.	T. Huang et al.
4	3	3	62	#/texts/60	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	[86.63, 307.39, 426.25, 6.58]	Fig. 3. EIS results of LRM/Li cell in BE and 2 vol% DTMS electrolyte after (a) pre-cycling and (b) cycling. (c) Values of Rf and Rct.	Fig. 3. EIS results of LRM/Li cell in BE and 2 vol% DTMS electrolyte after (a) pre-cycling and (b) cycling. (c) Values of Rf and Rct.	Fig. 3. EIS results of LRM/Li cell in BE and 2 vol% DTMS electrolyte after (a) pre-cycling and (b) cycling. (c) Values of Rf and Rct.	Fig. 3. EIS results of LRM/Li cell in BE and 2 vol% DTMS electrolyte after (a) pre-cycling and (b) cycling. (c) Values of Rf and Rct.
4	4	4	63	#/texts/61	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	[112.82, 587.51, 373.83, 6.58]	Fig. 4. TEM and SEM images of LRM cathodes after cycling (a), (c) with BE and (b), (d) 2 vol% DTMS electrolyte.	Fig. 4. TEM and SEM images of LRM cathodes after cycling (a), (c) with BE and (b), (d) 2 vol% DTMS electrolyte.	Fig. 4. TEM and SEM images of LRM cathodes after cycling (a), (c) with BE and (b), (d) 2 vol% DTMS electrolyte.	Fig. 4. TEM and SEM images of LRM cathodes after cycling (a), (c) with BE and (b), (d) 2 vol% DTMS electrolyte.
4	5	5	64	#/texts/62#prov0	text	body_candidate_excluded	False	high	inside_back_matter	inside_back_matter						True	p4:body_region:0	bottom_margin	column_1_of_2	1	2	p4:bottom_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 609.43, 253.44, 132.83]	(ROCO2Li, ROLi, and Li2CO3) at 286 and 288.8 eV were observed. The peak intensities for the electrolyte with DTMS were lower than those for the BE electrolyte. The same result can be observed in O 1s spectra. The peak i…	(ROCO2Li, ROLi, and Li2CO3) at 286 and 288.8 eV were observed. The peak intensities for the electrolyte with DTMS were lower than those for the BE electrolyte. The same result can be observed in O 1s spectra. The peak i…	(ROCO2Li, ROLi, and Li2CO3) at 286 and 288.8 eV were observed. The peak intensities for the electrolyte with DTMS were lower than those for the BE electrolyte. The same result can be observed in O 1s spectra. The peak intensities corresponding to C --O (531.9 eV) [17,19], C -O (533.4 eV)[ 25], and Li2CO3 (531.2 eV) [19] for the electrolyte with DTMS were lower. The F 1s peaks at 684.5 and 685.8 eV were assigned to LiF and Me -F [19], respectively. The peak at 56 eV [31] corresponds to LiF in the Li 1s spectra. For the BE electrolyte, the peak intensities of LiF and Me -F are higher in the F 1s spectra. The peaks at 686.9 eV [19] for LixPFy and LixPOyFz in the BE electrolyte are higher than those in the DTMS-containing electrolyte in the F 1s spectra, which may be due to the LiPF6 decomposition. This is in accordance with the P 1s spectra for the peaks of LixPFy (136.5 eV) and LixPOyFz (133.8 eV) [23]. In	(ROCO2Li, ROLi, and Li2CO3) at 286 and 288.8 eV were observed. The peak intensities for the electrolyte with DTMS were lower than those for the BE electrolyte. The same result can be observed in O 1s spectra. The peak intensities corresponding to C --O (531.9 eV) [17,19], C -O (533.4 eV)[ 25], and Li2CO3 (531.2 eV) [19] for the electrolyte with DTMS were lower. The F 1s peaks at 684.5 and 685.8 eV were assigned to LiF and Me -F [19], respectively. The peak at 56 eV [31] corresponds to LiF in the Li 1s spectra. For the BE electrolyte, the peak intensities of LiF and Me -F are higher in the F 1s spectra. The peaks at 686.9 eV [19] for LixPFy and LixPOyFz in the BE electrolyte are higher than those in the DTMS-containing electrolyte in the F 1s spectra, which may be due to the LiPF6 decomposition. This is in accordance with the P 1s spectra for the peaks of LixPFy (136.5 eV) and LixPOyFz (133.8 eV) [23]. In
4	6	6	65	#/texts/62#prov1	text	body_heading	False	low	inside_back_matter	inside_back_matter						True	p4:body_region:1	page_body	column_2_of_2	2	2	p4:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.59, 609.43, 253.42, 49.15]	conclusion, the peak intensities for the electrolyte decomposition products on the cathode in the DTMS-containing electrolyte were weaker, confirming that the electrolyte decomposition could be inhibited by DTMS. The ex…	conclusion, the peak intensities for the electrolyte decomposition products on the cathode in the DTMS-containing electrolyte were weaker, confirming that the electrolyte decomposition could be inhibited by DTMS. The ex…	conclusion, the peak intensities for the electrolyte decomposition products on the cathode in the DTMS-containing electrolyte were weaker, confirming that the electrolyte decomposition could be inhibited by DTMS. The existence of Si (Si 2p spectrum) indicates that the film on the cathode is formed from the oxidation of DTMS.	conclusion, the peak intensities for the electrolyte decomposition products on the cathode in the DTMS-containing electrolyte were weaker, confirming that the electrolyte decomposition could be inhibited by DTMS. The existence of Si (Si 2p spectrum) indicates that the film on the cathode is formed from the oxidation of DTMS.
4	7	7	66	#/texts/63#prov0	text	body_candidate_excluded	False	high	inside_back_matter	inside_back_matter						True	p4:body_region:1	bottom_margin	column_2_of_2	2	2	p4:bottom_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.59, 661.76, 253.43, 80.5]	The XRD results for the cathodes before and after cycling with the BE and 2% DTMS-containing electrolytes are shown in Fig. 5b: the XRD peak intensity of the cathode in the BE electrolyte reduces drastically after cycli…	The XRD results for the cathodes before and after cycling with the BE and 2% DTMS-containing electrolytes are shown in Fig. 5b: the XRD peak intensity of the cathode in the BE electrolyte reduces drastically after cycli…	The XRD results for the cathodes before and after cycling with the BE and 2% DTMS-containing electrolytes are shown in Fig. 5b: the XRD peak intensity of the cathode in the BE electrolyte reduces drastically after cycling. The peak (003) broadens and shifts slightly to a higher angle [19], indicating severe structural damage on the LRM electrode in the BE electrolyte. However, after cycling, the LRM electrode with the 2% DTMS-containing electrolyte exhibits almost the same diffraction pattern as that before cycling, indicating that the crystal structure of the	The XRD results for the cathodes before and after cycling with the BE and 2% DTMS-containing electrolytes are shown in Fig. 5b: the XRD peak intensity of the cathode in the BE electrolyte reduces drastically after cycling. The peak (003) broadens and shifts slightly to a higher angle [19], indicating severe structural damage on the LRM electrode in the BE electrolyte. However, after cycling, the LRM electrode with the 2% DTMS-containing electrolyte exhibits almost the same diffraction pattern as that before cycling, indicating that the crystal structure of the
4	8	8	67	#/texts/64	page_footer	page_footer	False	low	docling_page_footer	docling_page_footer						False	None	bottom_margin	column_2_of_2	2	2	p4:bottom_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[296.21, 754.45, 3.59, 10.42]	4	4	4	4
5	2	1	68	#/texts/65	page_header	page_header	False	low	docling_page_header	docling_page_header						True	p5:body_region:1	top_margin	column_2_of_2	2	2	p5:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[433.38, 33.65, 124.91, 10.42]	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437
5	1	2	69	#/texts/63#prov1	text	page_margin_header	False	low	page_margin_header	page_margin_header						True	p5:body_region:0	top_margin	column_1_of_2	1	2	p5:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 36.99, 463.07, 5.85]	T. Huang et al.	T. Huang et al.	T. Huang et al.	T. Huang et al.
5	3	3	70	#/texts/66	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	front_matter	column_1_of_2	1	2	p5:front_matter:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 557.13, 522.17, 16.1]	Fig. 5. (a)XPS spectra of LRM cathodes after cycling with BE and 2 vol% DTMS electrolytes. (b) XRD patterns of LRM cathodes and (c) dissolution of transition metal on Li electrode taken from cell after cycling.	Fig. 5. (a)XPS spectra of LRM cathodes after cycling with BE and 2 vol% DTMS electrolytes. (b) XRD patterns of LRM cathodes and (c) dissolution of transition metal on Li electrode taken from cell after cycling.	Fig. 5. (a)XPS spectra of LRM cathodes after cycling with BE and 2 vol% DTMS electrolytes. (b) XRD patterns of LRM cathodes and (c) dissolution of transition metal on Li electrode taken from cell after cycling.	Fig. 5. (a)XPS spectra of LRM cathodes after cycling with BE and 2 vol% DTMS electrolytes. (b) XRD patterns of LRM cathodes and (c) dissolution of transition metal on Li electrode taken from cell after cycling.
5	4	4	71	#/texts/67	text	body_candidate_excluded	False	high	inside_back_matter	inside_back_matter						True	p5:body_region:0	front_matter	column_1_of_2	1	2	p5:front_matter:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 588.57, 253.44, 80.56]	cathode was well maintained in DTMS-containing electrolyte. This further confirms that the DTMS is beneficial for maintaining structure stability during cycling. As shown in Fig. 5c, the Mn, Ni, and Co contents were 0.2…	cathode was well maintained in DTMS-containing electrolyte. This further confirms that the DTMS is beneficial for maintaining structure stability during cycling. As shown in Fig. 5c, the Mn, Ni, and Co contents were 0.2…	cathode was well maintained in DTMS-containing electrolyte. This further confirms that the DTMS is beneficial for maintaining structure stability during cycling. As shown in Fig. 5c, the Mn, Ni, and Co contents were 0.284, 0.074, and 0.021 ppm, respectively, for the electrolyte without an additive, and 0.73, 0.316, and 0.087 ppm, respectively, for the electrolyte with DTMS. Thus, the XRD and ICP-MS results show that the dissolution of transition metals was suppressed by the protective CEI formed via DTMS oxidation.	cathode was well maintained in DTMS-containing electrolyte. This further confirms that the DTMS is beneficial for maintaining structure stability during cycling. As shown in Fig. 5c, the Mn, Ni, and Co contents were 0.284, 0.074, and 0.021 ppm, respectively, for the electrolyte without an additive, and 0.73, 0.316, and 0.087 ppm, respectively, for the electrolyte with DTMS. Thus, the XRD and ICP-MS results show that the dissolution of transition metals was suppressed by the protective CEI formed via DTMS oxidation.
5	5	5	72	#/texts/68	section_header	body_heading	False	low	body_heading	body_heading						True	p5:body_region:0	body_zone	column_1_of_2	1	2	p5:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 683.75, 124.69, 7.31]	3.3. Interaction of DTMS with HF/F	3.3. Interaction of DTMS with HF/F	3.3. Interaction of DTMS with HF/F	3.3. Interaction of DTMS with HF/F
5	9	9	76	#/texts/71	page_footer	page_footer	False	low	docling_page_footer	docling_page_footer						False	None	bottom_margin	column_2_of_2	2	2	p5:bottom_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[296.21, 754.45, 3.59, 10.42]	5	5	5	5
6	2	1	77	#/texts/72	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p6:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[433.38, 33.65, 124.91, 10.42]	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437
6	1	2	78	#/texts/70#prov1	text	page_margin_header	False	low	page_margin_header	page_margin_header						False	None	top_margin	column_1_of_2	1	2	p6:top_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 36.99, 463.07, 5.85]	T. Huang et al.	T. Huang et al.	T. Huang et al.	T. Huang et al.
6	3	3	79	#/texts/73	caption	caption	False	low	outside_body_flow_caption	outside_body_flow_caption						False	None	page_body	column_1_of_2	1	2	p6:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 243.16, 522.15, 16.16]	Fig. 6. (a) Discharge profiles of cell during cycling with BE + 1000 ppm HF and 2 vol% DTMS-containing + 1000 ppm HF; F 1s XPS spectra of LRM cathodes after cycling with (b) BE + 1000 ppm HF and (c) 2 vol% DTMS-containi…	Fig. 6. (a) Discharge profiles of cell during cycling with BE + 1000 ppm HF and 2 vol% DTMS-containing + 1000 ppm HF; F 1s XPS spectra of LRM cathodes after cycling with (b) BE + 1000 ppm HF and (c) 2 vol% DTMS-containi…	Fig. 6. (a) Discharge profiles of cell during cycling with BE + 1000 ppm HF and 2 vol% DTMS-containing + 1000 ppm HF; F 1s XPS spectra of LRM cathodes after cycling with (b) BE + 1000 ppm HF and (c) 2 vol% DTMS-containing + 1000 ppm HF electrolyte.	Fig. 6. (a) Discharge profiles of cell during cycling with BE + 1000 ppm HF and 2 vol% DTMS-containing + 1000 ppm HF; F 1s XPS spectra of LRM cathodes after cycling with (b) BE + 1000 ppm HF and (c) 2 vol% DTMS-containing + 1000 ppm HF electrolyte.
6	7	7	83	#/texts/76	page_footer	page_footer	False	low	docling_page_footer	docling_page_footer						False	None	bottom_margin	column_2_of_2	2	2	p6:bottom_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[296.21, 754.45, 3.59, 10.42]	6	6	6	6
7	2	1	84	#/texts/77	page_header	page_header	False	low	docling_page_header	docling_page_header						False	None	top_margin	column_2_of_2	2	2	p7:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[433.38, 33.65, 124.91, 10.42]	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437	Journal of Power Sources 580 (2023) 233437
7	1	2	85	#/texts/75#prov2	text	page_margin_header	False	low	page_margin_header	page_margin_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	[37.59, 36.99, 463.07, 5.85]	T. Huang et al.	T. Huang et al.	T. Huang et al.	T. Huang et al.
7	7	5	88	#/texts/82	section_header	body_heading	False	low	body_heading	body_heading						True	p7:body_region:0	body_zone	column_1_of_2	1	2	p7:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 284.81, 60.27, 7.31]	4. Conclusions	4. Conclusions	4. Conclusions	4. Conclusions
7	9	7	90	#/texts/84	section_header	back_matter_heading	False	low	back_matter_heading	back_matter_heading					stop_trigger	True	p7:body_region:0	body_zone	column_1_of_2	1	2	p7:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 400.63, 164.27, 7.31]	CRediT authorship contribution statement	CRediT authorship contribution statement	CRediT authorship contribution statement	CRediT authorship contribution statement
7	10	8	91	#/texts/85	text	affiliation	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p7:body_region:0	body_zone	column_1_of_2	1	2	p7:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 421.55, 253.42, 38.66]	Tao Huang: Investigation, Methodology, Writing -original draft. Xiangzhen Zheng: Investigation. Chunfeng Yan: Validation. Ying Pan: Software. Maoxiang Wu: Conceptualization, Writing -review & editing.	Tao Huang: Investigation, Methodology, Writing -original draft. Xiangzhen Zheng: Investigation. Chunfeng Yan: Validation. Ying Pan: Software. Maoxiang Wu: Conceptualization, Writing -review & editing.	Tao Huang: Investigation, Methodology, Writing -original draft. Xiangzhen Zheng: Investigation. Chunfeng Yan: Validation. Ying Pan: Software. Maoxiang Wu: Conceptualization, Writing -review & editing.	Tao Huang: Investigation, Methodology, Writing -original draft. Xiangzhen Zheng: Investigation. Chunfeng Yan: Validation. Ying Pan: Software. Maoxiang Wu: Conceptualization, Writing -review & editing.
7	11	9	92	#/texts/86	section_header	back_matter_heading	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p7:body_region:0	body_zone	column_1_of_2	1	2	p7:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 476.94, 130.92, 7.31]	Declaration of competing interest	Declaration of competing interest	Declaration of competing interest	Declaration of competing interest
7	12	10	93	#/texts/87	text	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p7:body_region:0	body_zone	column_1_of_2	1	2	p7:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[49.55, 497.86, 187.21, 7.31]	The authors declare no competing financial interest.	The authors declare no competing financial interest.	The authors declare no competing financial interest.	The authors declare no competing financial interest.
7	13	11	94	#/texts/88	section_header	back_matter_heading	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p7:body_region:0	body_zone	column_1_of_2	1	2	p7:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 518.78, 65.84, 7.31]	Data availability	Data availability	Data availability	Data availability
7	14	12	95	#/texts/89	text	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p7:body_region:0	body_zone	column_1_of_2	1	2	p7:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[49.55, 539.7, 142.71, 7.31]	Data will be made available on request.	Data will be made available on request.	Data will be made available on request.	Data will be made available on request.
7	15	13	96	#/texts/90	section_header	back_matter_heading	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p7:body_region:0	body_zone	column_1_of_2	1	2	p7:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 561.35, 72.63, 7.31]	Acknowledgement	Acknowledgement	Acknowledgement	Acknowledgement
7	16	14	97	#/texts/91	text	back_matter_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p7:body_region:0	body_zone	column_1_of_2	1	2	p7:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 582.27, 253.44, 28.23]	This work was supported by the Science and Technology Planning Project of Fujian Province (Grant No. 2022H0038, 2020H0037, 2022T3001).	This work was supported by the Science and Technology Planning Project of Fujian Province (Grant No. 2022H0038, 2020H0037, 2022T3001).	This work was supported by the Science and Technology Planning Project of Fujian Province (Grant No. 2022H0038, 2020H0037, 2022T3001).	This work was supported by the Science and Technology Planning Project of Fujian Province (Grant No. 2022H0038, 2020H0037, 2022T3001).
7	17	15	98	#/texts/92	section_header	unknown_text	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p7:body_region:0	body_zone	column_1_of_2	1	2	p7:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 624.85, 130.96, 7.31]	Appendix A. Supplementary data	Appendix A. Supplementary data	Appendix A. Supplementary data	Appendix A. Supplementary data
7	18	16	99	#/texts/93	text	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p7:body_region:0	body_zone	column_1_of_2	1	2	p7:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 645.77, 253.41, 17.74]	Supplementary data to this article can be found online at https://doi. org/10.1016/j.jpowsour.2023.233437.	Supplementary data to this article can be found online at org/10.1016/j.jpowsour.2023.233437.	Supplementary data to this article can be found online at https://doi. org/10.1016/j.jpowsour.2023.233437.	Supplementary data to this article can be found online at org/10.1016/j.jpowsour.2023.233437.
7	19	17	100	#/texts/94	section_header	back_matter_heading	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	True	p7:body_region:0	body_zone	column_1_of_2	1	2	p7:body_zone:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 677.86, 43.55, 7.31]	References	References	References	References
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7	31	31	114	#/texts/106	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	body_zone	column_2_of_2	2	2	p7:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 452.95, 246.33, 37.71]	H. Liu, C. Chen, C. Du, X. He, G. Yin, B. Song, P. Zuo, X. Cheng, Y. Ma, Y. Gao, Lithium-rich Li1.2Ni0.13Co0.13Mn0.54O2 oxide coated by Li3PO4 and carbon nanocomposite layers as high performance cathode materials for li…	H. Liu, C. Chen, C. Du, X. He, G. Yin, B. Song, P. Zuo, X. Cheng, Y. Ma, Y. Gao, Lithium-rich Li1.2Ni0.13Co0.13Mn0.54O2 oxide coated by Li3PO4 and carbon nanocomposite layers as high performance cathode materials for li…	H. Liu, C. Chen, C. Du, X. He, G. Yin, B. Song, P. Zuo, X. Cheng, Y. Ma, Y. Gao, Lithium-rich Li1.2Ni0.13Co0.13Mn0.54O2 oxide coated by Li3PO4 and carbon nanocomposite layers as high performance cathode materials for lithium ion batteries, J. Mater. Chem. A 3 (2015) 2634 -2641, https://doi.org/10.1039/ c4ta04823g.	H. Liu, C. Chen, C. Du, X. He, G. Yin, B. Song, P. Zuo, X. Cheng, Y. Ma, Y. Gao, Lithium-rich Li1.2Ni0.13Co0.13Mn0.54O2 oxide coated by Li3PO4 and carbon nanocomposite layers as high performance cathode materials for lithium ion batteries, J. Mater. Chem. A 3 (2015) 2634 -2641,
7	32	32	115	#/texts/107	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	body_zone	column_2_of_2	2	2	p7:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 492.81, 250.92, 21.78]	J. Han, S. Lee, J. Lee, J. Kim, K. Lee, N. Choi, Tunable and robust phosphite-derived surface film to protect lithium-rich cathodes in lithium-ion batteries, ACS Appl. Mater. Interfaces 7 (2015) 8319 -8329, https://doi.…	J. Han, S. Lee, J. Lee, J. Kim, K. Lee, N. Choi, Tunable and robust phosphite-derived surface film to protect lithium-rich cathodes in lithium-ion batteries, ACS Appl. Mater. Interfaces 7 (2015) 8319 -8329,	J. Han, S. Lee, J. Lee, J. Kim, K. Lee, N. Choi, Tunable and robust phosphite-derived surface film to protect lithium-rich cathodes in lithium-ion batteries, ACS Appl. Mater. Interfaces 7 (2015) 8319 -8329, https://doi.org/10.1021/acsami.5b01770.	J. Han, S. Lee, J. Lee, J. Kim, K. Lee, N. Choi, Tunable and robust phosphite-derived surface film to protect lithium-rich cathodes in lithium-ion batteries, ACS Appl. Mater. Interfaces 7 (2015) 8319 -8329,
7	33	33	116	#/texts/108	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	body_zone	column_2_of_2	2	2	p7:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 516.73, 247.47, 29.72]	J. Zhang, J. Wang, J. Yang, Y. NuLi, Artificial interface deriving from Sacrificial Tris(trimethylsilyl)phosphate additive for lithium rich cathode materials, Electrochim. Acta 117 (2014) 99 -104, https://doi.org/10.101…	J. Zhang, J. Wang, J. Yang, Y. NuLi, Artificial interface deriving from Sacrificial Tris(trimethylsilyl)phosphate additive for lithium rich cathode materials, Electrochim. Acta 117 (2014) 99 -104,	J. Zhang, J. Wang, J. Yang, Y. NuLi, Artificial interface deriving from Sacrificial Tris(trimethylsilyl)phosphate additive for lithium rich cathode materials, Electrochim. Acta 117 (2014) 99 -104, https://doi.org/10.1016/j. electacta.2013.11.024.	J. Zhang, J. Wang, J. Yang, Y. NuLi, Artificial interface deriving from Sacrificial Tris(trimethylsilyl)phosphate additive for lithium rich cathode materials, Electrochim. Acta 117 (2014) 99 -104,
7	34	34	117	#/texts/109	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	body_zone	column_2_of_2	2	2	p7:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 548.59, 250.97, 29.77]	J. Li, L. Xing, R. Zhang, M. Chen, Z. Wang, M. Xu, W. Li, Tris(trimethylsilyl)borate as an electrolyte additive for improving interfacial stability of high voltage layered lithium-rich oxide cathode/carbonate-based elec…	J. Li, L. Xing, R. Zhang, M. Chen, Z. Wang, M. Xu, W. Li, Tris(trimethylsilyl)borate as an electrolyte additive for improving interfacial stability of high voltage layered lithium-rich oxide cathode/carbonate-based elec…	J. Li, L. Xing, R. Zhang, M. Chen, Z. Wang, M. Xu, W. Li, Tris(trimethylsilyl)borate as an electrolyte additive for improving interfacial stability of high voltage layered lithium-rich oxide cathode/carbonate-based electrolyte, J. Power Sources 285 (2015) 360 -366, https://doi.org/10.1016/j.jpowsour.2015.03.113.	J. Li, L. Xing, R. Zhang, M. Chen, Z. Wang, M. Xu, W. Li, Tris(trimethylsilyl)borate as an electrolyte additive for improving interfacial stability of high voltage layered lithium-rich oxide cathode/carbonate-based electrolyte, J. Power Sources 285 (2015) 360 -366,
7	35	35	118	#/texts/110	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	body_zone	column_2_of_2	2	2	p7:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 580.45, 250.95, 29.77]	J. Lan, Q. Zheng, H. Zhou, J. Li, L. Xing, K. Xu, W. Fan, L. Yu, W. Li, Stabilizing a high-voltage lithium-rich layered oxide cathode with a novel electrolyte additive, ACS Appl. Mater. Interfaces 11 (2019) 28841 -28850…	J. Lan, Q. Zheng, H. Zhou, J. Li, L. Xing, K. Xu, W. Fan, L. Yu, W. Li, Stabilizing a high-voltage lithium-rich layered oxide cathode with a novel electrolyte additive, ACS Appl. Mater. Interfaces 11 (2019) 28841 -28850,	J. Lan, Q. Zheng, H. Zhou, J. Li, L. Xing, K. Xu, W. Fan, L. Yu, W. Li, Stabilizing a high-voltage lithium-rich layered oxide cathode with a novel electrolyte additive, ACS Appl. Mater. Interfaces 11 (2019) 28841 -28850, https://doi.org/10.1021/ acsami.9b07441.	J. Lan, Q. Zheng, H. Zhou, J. Li, L. Xing, K. Xu, W. Fan, L. Yu, W. Li, Stabilizing a high-voltage lithium-rich layered oxide cathode with a novel electrolyte additive, ACS Appl. Mater. Interfaces 11 (2019) 28841 -28850,
7	36	36	119	#/texts/111	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	body_zone	column_2_of_2	2	2	p7:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 612.37, 250.93, 29.72]	X. Zuo, M. Zhao, X. Ma, X. Xiao, J. Liu, J. Nan, Effect of diphenyl disulfide as an additive on the electrochemical performance of Li1.2Mn0.54Ni0.13Co0.13O2/graphite batteries at elevated temperature, Electrochim. Acta …	X. Zuo, M. Zhao, X. Ma, X. Xiao, J. Liu, J. Nan, Effect of diphenyl disulfide as an additive on the electrochemical performance of Li1.2Mn0.54Ni0.13Co0.13O2/graphite batteries at elevated temperature, Electrochim. Acta …	X. Zuo, M. Zhao, X. Ma, X. Xiao, J. Liu, J. Nan, Effect of diphenyl disulfide as an additive on the electrochemical performance of Li1.2Mn0.54Ni0.13Co0.13O2/graphite batteries at elevated temperature, Electrochim. Acta 245 (2017) 245 705 -714, https://doi.org/10.1016/j.electacta.2017.05.155.	X. Zuo, M. Zhao, X. Ma, X. Xiao, J. Liu, J. Nan, Effect of diphenyl disulfide as an additive on the electrochemical performance of Li1.2Mn0.54Ni0.13Co0.13O2/graphite batteries at elevated temperature, Electrochim. Acta 245 (2017) 245 705 -714,
7	37	37	120	#/texts/112	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	body_zone	column_2_of_2	2	2	p7:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 644.23, 249.78, 29.77]	L. Wang, Y. Ma, Q. Li, Z. Zhou, X. Cheng, P. Zuo, C. Du, Y. Gao, G. Yin, 1,3,6hexanetricarbonitrile as electrolyte additive for enhancing electrochemical performance of high voltage Li-rich layered oxide cathode, J. Pow…	L. Wang, Y. Ma, Q. Li, Z. Zhou, X. Cheng, P. Zuo, C. Du, Y. Gao, G. Yin, 1,3,6hexanetricarbonitrile as electrolyte additive for enhancing electrochemical performance of high voltage Li-rich layered oxide cathode, J. Pow…	L. Wang, Y. Ma, Q. Li, Z. Zhou, X. Cheng, P. Zuo, C. Du, Y. Gao, G. Yin, 1,3,6hexanetricarbonitrile as electrolyte additive for enhancing electrochemical performance of high voltage Li-rich layered oxide cathode, J. Power Sources 316 (2017) 227 -236, https://doi.org/10.1016/j.jpowsour.2017.06.075.	L. Wang, Y. Ma, Q. Li, Z. Zhou, X. Cheng, P. Zuo, C. Du, Y. Gao, G. Yin, 1,3,6hexanetricarbonitrile as electrolyte additive for enhancing electrochemical performance of high voltage Li-rich layered oxide cathode, J. Power Sources 316 (2017) 227 -236,
7	38	38	121	#/texts/113	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	body_zone	column_2_of_2	2	2	p7:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 676.09, 250.92, 29.77]	H. Pham, K. Nam, E. Hwang, Y. Kwon, H. Jung, S. Song, Performance Enhancement of 4.8 V Li1.2Mn0.525Ni0.175Co0.1O2 battery cathode using Fluorinated linear carbonate as a high-voltage additive, J. Electrochem. Soc. 161 (…	H. Pham, K. Nam, E. Hwang, Y. Kwon, H. Jung, S. Song, Performance Enhancement of 4.8 V Li1.2Mn0.525Ni0.175Co0.1O2 battery cathode using Fluorinated linear carbonate as a high-voltage additive, J. Electrochem. Soc. 161 (…	H. Pham, K. Nam, E. Hwang, Y. Kwon, H. Jung, S. Song, Performance Enhancement of 4.8 V Li1.2Mn0.525Ni0.175Co0.1O2 battery cathode using Fluorinated linear carbonate as a high-voltage additive, J. Electrochem. Soc. 161 (2014) A2002 -A2011, https://doi.org/10.1149/2.1141412jes.	H. Pham, K. Nam, E. Hwang, Y. Kwon, H. Jung, S. Song, Performance Enhancement of 4.8 V Li1.2Mn0.525Ni0.175Co0.1O2 battery cathode using Fluorinated linear carbonate as a high-voltage additive, J. Electrochem. Soc. 161 (2014) A2002 -A2011,
7	39	39	122	#/texts/114	list_item	reference	False	low	after_back_matter_stop	after_back_matter_stop					after_stop	False	None	bottom_margin	column_2_of_2	2	2	p7:bottom_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.6, 708.01, 250.96, 29.72]	J. Cha, J. Han, J. Hwang, J. Cho, N. Choi, Mechanisms for electrochemical performance enhancement by the salt-type electrolyte additive, lithium difluoro (oxalato)borate, in high-voltage lithium-ion batteries, J. Power …	J. Cha, J. Han, J. Hwang, J. Cho, N. Choi, Mechanisms for electrochemical performance enhancement by the salt-type electrolyte additive, lithium difluoro (oxalato)borate, in high-voltage lithium-ion batteries, J. Power …	J. Cha, J. Han, J. Hwang, J. Cho, N. Choi, Mechanisms for electrochemical performance enhancement by the salt-type electrolyte additive, lithium difluoro (oxalato)borate, in high-voltage lithium-ion batteries, J. Power Sources 357 (2017) 97 -106, https://doi.org/10.1016/j.jpowsour.2017.04.094.	J. Cha, J. Han, J. Hwang, J. Cho, N. Choi, Mechanisms for electrochemical performance enhancement by the salt-type electrolyte additive, lithium difluoro (oxalato)borate, in high-voltage lithium-ion batteries, J. Power Sources 357 (2017) 97 -106,
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8	8	8	131	#/texts/123	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	p8:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 206.9, 250.96, 21.78]	T.J. Lee, J. Soon, S. Chae, J.H. Ryu, S.M. Oh, A bifunctional electrolyte additive for high-voltage LiNi0.5Mn1.5O4 positive electrodes, ACS Appl. Mater. Interfaces 11 (2019) 11306 -11316, https://doi.org/10.1021/acsami.…	T.J. Lee, J. Soon, S. Chae, J.H. Ryu, S.M. Oh, A bifunctional electrolyte additive for high-voltage LiNi0.5Mn1.5O4 positive electrodes, ACS Appl. Mater. Interfaces 11 (2019) 11306 -11316,	T.J. Lee, J. Soon, S. Chae, J.H. Ryu, S.M. Oh, A bifunctional electrolyte additive for high-voltage LiNi0.5Mn1.5O4 positive electrodes, ACS Appl. Mater. Interfaces 11 (2019) 11306 -11316, https://doi.org/10.1021/acsami.8b19009.	T.J. Lee, J. Soon, S. Chae, J.H. Ryu, S.M. Oh, A bifunctional electrolyte additive for high-voltage LiNi0.5Mn1.5O4 positive electrodes, ACS Appl. Mater. Interfaces 11 (2019) 11306 -11316,
8	9	9	132	#/texts/124	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	p8:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[37.59, 230.83, 250.97, 13.84]	T. Huang, Y. Pan, C. Yan, M. Wu, Electrochemical property enhancement of LiNi0.5Mn1.5O4 cathodes at high temperatures using 1,1,3,3-tetramethyldisiloxane,	T. Huang, Y. Pan, C. Yan, M. Wu, Electrochemical property enhancement of LiNi0.5Mn1.5O4 cathodes at high temperatures using 1,1,3,3-tetramethyldisiloxane,	T. Huang, Y. Pan, C. Yan, M. Wu, Electrochemical property enhancement of LiNi0.5Mn1.5O4 cathodes at high temperatures using 1,1,3,3-tetramethyldisiloxane,	T. Huang, Y. Pan, C. Yan, M. Wu, Electrochemical property enhancement of LiNi0.5Mn1.5O4 cathodes at high temperatures using 1,1,3,3-tetramethyldisiloxane,
8	10	10	133	#/texts/125	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	p8:top_margin:column_2_of_2:white	[255, 255, 255]	white	False	False	[323.15, 55.48, 228.32, 13.84]	ACS Appl. Mater. Interfaces 13 (2021) 48881 -48888, https://doi.org/10.1021/ acsami.1c15137.	ACS Appl. Mater. Interfaces 13 (2021) 48881 -48888, acsami.1c15137.	ACS Appl. Mater. Interfaces 13 (2021) 48881 -48888, https://doi.org/10.1021/ acsami.1c15137.	ACS Appl. Mater. Interfaces 13 (2021) 48881 -48888, acsami.1c15137.
8	11	11	134	#/texts/126	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	p8:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.59, 71.41, 250.94, 29.77]	J. Chen, H. Zhang, M. Wang, J. Liu, C. Li, P. Zhang, Improving the electrochemical performance of high voltage spinel cathode at elevated temperature by a novel electrolyte additive, J. Power Sources 303 (2016) 41 -48, …	J. Chen, H. Zhang, M. Wang, J. Liu, C. Li, P. Zhang, Improving the electrochemical performance of high voltage spinel cathode at elevated temperature by a novel electrolyte additive, J. Power Sources 303 (2016) 41 -48,	J. Chen, H. Zhang, M. Wang, J. Liu, C. Li, P. Zhang, Improving the electrochemical performance of high voltage spinel cathode at elevated temperature by a novel electrolyte additive, J. Power Sources 303 (2016) 41 -48, https://doi.org/10.1016/ j.jpowsour.2015.10.088.	J. Chen, H. Zhang, M. Wang, J. Liu, C. Li, P. Zhang, Improving the electrochemical performance of high voltage spinel cathode at elevated temperature by a novel electrolyte additive, J. Power Sources 303 (2016) 41 -48,
8	12	12	135	#/texts/127	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	p8:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.59, 103.33, 250.96, 29.72]	L. Xing, C. Wang, M. Xu, W. Li, Z. Cai, Theoretical study on reduction mechanism of 1,3-benzodioxol-2-one for the formation of solid electrolyte interface on anode of lithium ion battery, J. Power Sources 189 (2009) 689…	L. Xing, C. Wang, M. Xu, W. Li, Z. Cai, Theoretical study on reduction mechanism of 1,3-benzodioxol-2-one for the formation of solid electrolyte interface on anode of lithium ion battery, J. Power Sources 189 (2009) 689…	L. Xing, C. Wang, M. Xu, W. Li, Z. Cai, Theoretical study on reduction mechanism of 1,3-benzodioxol-2-one for the formation of solid electrolyte interface on anode of lithium ion battery, J. Power Sources 189 (2009) 689 -692, https://doi.org/ 10.1016/j.jpowsour.2008.08.076.	L. Xing, C. Wang, M. Xu, W. Li, Z. Cai, Theoretical study on reduction mechanism of 1,3-benzodioxol-2-one for the formation of solid electrolyte interface on anode of lithium ion battery, J. Power Sources 189 (2009) 689 -692, 10.1016/j.jpowsour.2008.08.076.
8	13	13	136	#/texts/128	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	p8:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.59, 135.19, 250.95, 29.77]	Y. Zhu, X. Luo, H. Zhi, Y. Liao, L. Xing, M. Xu, X. Liu, K. Xu, W. Li, Diethyl (thiophen-2-ylmethyl)phosphonate: a novel multifunctional electrolyte additive for high voltage batteries, J. Mater. Chem. A 6 (2018) 10990 …	Y. Zhu, X. Luo, H. Zhi, Y. Liao, L. Xing, M. Xu, X. Liu, K. Xu, W. Li, Diethyl (thiophen-2-ylmethyl)phosphonate: a novel multifunctional electrolyte additive for high voltage batteries, J. Mater. Chem. A 6 (2018) 10990 …	Y. Zhu, X. Luo, H. Zhi, Y. Liao, L. Xing, M. Xu, X. Liu, K. Xu, W. Li, Diethyl (thiophen-2-ylmethyl)phosphonate: a novel multifunctional electrolyte additive for high voltage batteries, J. Mater. Chem. A 6 (2018) 10990 -11004, https://doi. org/10.1039/c8ta01236a.	Y. Zhu, X. Luo, H. Zhi, Y. Liao, L. Xing, M. Xu, X. Liu, K. Xu, W. Li, Diethyl (thiophen-2-ylmethyl)phosphonate: a novel multifunctional electrolyte additive for high voltage batteries, J. Mater. Chem. A 6 (2018) 10990 -11004, org/10.1039/c8ta01236a.
8	14	14	137	#/texts/129	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	p8:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.59, 167.05, 250.95, 29.77]	Y. Zhu, X. Luo, H. Zhi, Y. Liao, L. Xing, M. Xu, X. Liu, K. Xu, W. Li, Diethyl (thiophen-2-ylmethyl)phosphonate: a novel multifunctional electrolyte additive for high voltage batteries, J. Mater. Chem. A 6 (2018) 10990 …	Y. Zhu, X. Luo, H. Zhi, Y. Liao, L. Xing, M. Xu, X. Liu, K. Xu, W. Li, Diethyl (thiophen-2-ylmethyl)phosphonate: a novel multifunctional electrolyte additive for high voltage batteries, J. Mater. Chem. A 6 (2018) 10990 …	Y. Zhu, X. Luo, H. Zhi, Y. Liao, L. Xing, M. Xu, X. Liu, K. Xu, W. Li, Diethyl (thiophen-2-ylmethyl)phosphonate: a novel multifunctional electrolyte additive for high voltage batteries, J. Mater. Chem. A 6 (2018) 10990 -11004, https://doi. org/10.1016/j.jpowsour.2019.227366.	Y. Zhu, X. Luo, H. Zhi, Y. Liao, L. Xing, M. Xu, X. Liu, K. Xu, W. Li, Diethyl (thiophen-2-ylmethyl)phosphonate: a novel multifunctional electrolyte additive for high voltage batteries, J. Mater. Chem. A 6 (2018) 10990 -11004, org/10.1016/j.jpowsour.2019.227366.
8	15	15	138	#/texts/130	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	p8:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.59, 198.97, 250.92, 29.72]	H. Wang, D. Sun, X. Li, W. Ge, B. Deng, M. Qu, G. Peng, Alternative multifunctional cyclic organosilicon as an efficient electrolyte additive for high performance lithium-ion batteries, Electrochim. Acta 254 (2017) 112 …	H. Wang, D. Sun, X. Li, W. Ge, B. Deng, M. Qu, G. Peng, Alternative multifunctional cyclic organosilicon as an efficient electrolyte additive for high performance lithium-ion batteries, Electrochim. Acta 254 (2017) 112 …	H. Wang, D. Sun, X. Li, W. Ge, B. Deng, M. Qu, G. Peng, Alternative multifunctional cyclic organosilicon as an efficient electrolyte additive for high performance lithium-ion batteries, Electrochim. Acta 254 (2017) 112 -122, https://doi.org/ 10.1016/j.electacta.2017.09.111.	H. Wang, D. Sun, X. Li, W. Ge, B. Deng, M. Qu, G. Peng, Alternative multifunctional cyclic organosilicon as an efficient electrolyte additive for high performance lithium-ion batteries, Electrochim. Acta 254 (2017) 112 -122, 10.1016/j.electacta.2017.09.111.
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