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	14	14	13	#/texts/13#prov0	text	body	True	None	body	body						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	[60.49, 523.43, 240.0, 233.93]	Li-ion batteries (LIBs) have been powering most of the portable electronics for decades and are driving various types of electric vehicles nowadays. Safety, energy density, and cycle life are the essential criteria to e…	Li-ion batteries (LIBs) have been powering most of the portable electronics for decades and are driving various types of electric vehicles nowadays. Safety, energy density, and cycle life are the essential criteria to e…	Li-ion batteries (LIBs) have been powering most of the portable electronics for decades and are driving various types of electric vehicles nowadays. Safety, energy density, and cycle life are the essential criteria to evaluate if an LIB (or its pack) can be applied in these facilities. Mn-based Li-rich layer-structured oxide composites (or solid solutions) x Li2MnO3 · (1 -x )Li M O2 (0 < x < 1.0, M = Mn, Ni, Co, etc.) are promising cathode materials with reversible capacities above 280 mAh g -1 due to the stabilizing e ff ect of the Li2MnO3 component on its structure. 1 However, the intrinsic properties of Li2MnO3, including the charge transfer from O 2 -after oxygen release 2 or exchange of Li + by H + , which is generated in the electrolyte 3 instead of the oxidation of Mn 4+ ions, as well as the irreversible Mn 4+ -ion migration into the lithium vacancies in the transition metal layer during the initial delithiation, 4 irreversible layer-tospinel transition in subsequent Li + insertion, 5 and poor electrochemical kinetics, 6,7 make the composites su ff er from drawbacks such as low initial Coulombic e ffi ciency, 8 falling of discharge voltage and energy density, 4,9,10 and poor rate performance 11 during cycling as well as potential safety hazard caused by oxygen release 12,13 in the initial charge. Although	Li-ion batteries (LIBs) have been powering most of the portable electronics for decades and are driving various types of electric vehicles nowadays. Safety, energy density, and cycle life are the essential criteria to evaluate if an LIB (or its pack) can be applied in these facilities. Mn-based Li-rich layer-structured oxide composites (or solid solutions) x Li2MnO3 · (1 -x )Li M O2 (0 < x < 1.0, M = Mn, Ni, Co, etc.) are promising cathode materials with reversible capacities above 280 mAh g -1 due to the stabilizing e ff ect of the Li2MnO3 component on its structure. 1 However, the intrinsic properties of Li2MnO3, including the charge transfer from O 2 -after oxygen release 2 or exchange of Li + by H + , which is generated in the electrolyte 3 instead of the oxidation of Mn 4+ ions, as well as the irreversible Mn 4+ -ion migration into the lithium vacancies in the transition metal layer during the initial delithiation, 4 irreversible layer-tospinel transition in subsequent Li + insertion, 5 and poor electrochemical kinetics, 6,7 make the composites su ff er from drawbacks such as low initial Coulombic e ffi ciency, 8 falling of discharge voltage and energy density, 4,9,10 and poor rate performance 11 during cycling as well as potential safety hazard caused by oxygen release 12,13 in the initial charge. Although
1	15	16	15	#/texts/13#prov1	text	body	True	None	body	body						True	p1:body_region:1	body_zone	column_2_of_2	2	2	p1:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[324.45, 502.82, 240.04, 115.98]	surface modi fi cation, 14,15 atomic substitution, 16 -18 and optimization of synthesis strategies 19,20 have been pursued to improve the performances of the composites, complete elimination of their drawbacks related t…	surface modi fi cation, 14,15 atomic substitution, 16 -18 and optimization of synthesis strategies 19,20 have been pursued to improve the performances of the composites, complete elimination of their drawbacks related t…	surface modi fi cation, 14,15 atomic substitution, 16 -18 and optimization of synthesis strategies 19,20 have been pursued to improve the performances of the composites, complete elimination of their drawbacks related to the Li2MnO3 component cannot be accomplished. Therefore, search for a replacement of Li 2 MnO3 that is compatible with Li M O2 but is free of the disadvantages of Li 2 MnO3 is critical in designing novel Li-rich cathode materials x Li 2 M ′ O3 · (1 -x )Li M O2 (0 < x < 1.0, M ′ ́ = Ti, Mn, Zr, Ru, Mo, Sn, Pt, Ir, etc.) with improved electrochemical performances.	surface modi fi cation, 14,15 atomic substitution, 16 -18 and optimization of synthesis strategies 19,20 have been pursued to improve the performances of the composites, complete elimination of their drawbacks related to the Li2MnO3 component cannot be accomplished. Therefore, search for a replacement of Li 2 MnO3 that is compatible with Li M O2 but is free of the disadvantages of Li 2 MnO3 is critical in designing novel Li-rich cathode materials x Li 2 M ′ O3 · (1 -x )Li M O2 (0 < x < 1.0, M ′ ́ = Ti, Mn, Zr, Ru, Mo, Sn, Pt, Ir, etc.) with improved electrochemical performances.
1	16	17	16	#/texts/14	text	body	True	None	body	body						True	p1:body_region:1	body_zone	column_2_of_2	2	2	p1:body_zone:column_2_of_2:white	[255, 255, 255]	white	False	False	[324.45, 621.22, 240.01, 88.63]	Here, we propose to replace Li2MnO3 with Li2MoO3 with disordered NaFeO2 structure ( R 3 ̅ m ; a = 2.884 Å, c = 14.834 Å) 21 -24 to construct novel Li-rich x Li2MoO3 · (1 -x )Li M O2 cathodes and evaluate its feasibility…	Here, we propose to replace Li2MnO3 with Li2MoO3 with disordered NaFeO2 structure ( R 3 ̅ m ; a = 2.884 Å, c = 14.834 Å) 21 -24 to construct novel Li-rich x Li2MoO3 · (1 -x )Li M O2 cathodes and evaluate its feasibility…	Here, we propose to replace Li2MnO3 with Li2MoO3 with disordered NaFeO2 structure ( R 3 ̅ m ; a = 2.884 Å, c = 14.834 Å) 21 -24 to construct novel Li-rich x Li2MoO3 · (1 -x )Li M O2 cathodes and evaluate its feasibility by X-ray di ff raction (XRD), X-ray absorption spectroscopy (XAS) and spherical-aberrationcorrected scanning transmission electron microscopy (STEM). This proposal was made on the basis of the following considerations and/or facts. (1) The Mo 4+ /Mo 6+ redox couple	Here, we propose to replace Li2MnO3 with Li2MoO3 with disordered NaFeO2 structure ( R 3 ̅ m ; a = 2.884 Å, c = 14.834 Å) 21 -24 to construct novel Li-rich x Li2MoO3 · (1 -x )Li M O2 cathodes and evaluate its feasibility by X-ray di ff raction (XRD), X-ray absorption spectroscopy (XAS) and spherical-aberrationcorrected scanning transmission electron microscopy (STEM). This proposal was made on the basis of the following considerations and/or facts. (1) The Mo 4+ /Mo 6+ redox couple
2	3	2	26	#/texts/26	text	body	True	None	body	body						True	p2:body_region:0	front_matter	column_1_of_2	1	2	p2:front_matter:column_1_of_2:white	[255, 255, 255]	white	False	False	[60.49, 69.37, 240.01, 372.97]	in Li2MoO3 can exchange multiple electrons and supply a theoretical capacity up to 339 mAh g -1 . (2) Our fi rst-principles calculations indicate that Mo doping delays the oxygen release (i.e., oxygen evolution occurs o…	in Li2MoO3 can exchange multiple electrons and supply a theoretical capacity up to 339 mAh g -1 . (2) Our fi rst-principles calculations indicate that Mo doping delays the oxygen release (i.e., oxygen evolution occurs o…	in Li2MoO3 can exchange multiple electrons and supply a theoretical capacity up to 339 mAh g -1 . (2) Our fi rst-principles calculations indicate that Mo doping delays the oxygen release (i.e., oxygen evolution occurs only when more Li ions are extracted) and lowers the potential of lithium extraction of Li 2 MnO3, bene fi cial for improving its structural stability and compatibility with the electrolyte. 25 (3) The similarity of lattice parameter of the hexagonal Li2MoO3 to that of Li M O2 is bene fi cial for forming layer -layer solid solutions. 26 -28 (4) Although Li2MoO3 was ruled out as an independent cathode due to the disproportionation and migration of its Mo ions in the fi rst cycle, 21 that does not necessarily prevent it from becoming an ideal building block for constructing novel layerstructured cathode materials, x Li2MoO3 · (1 -x )Li M O2. Actually, x Li2MoO3 · (1 -x )LiFeO2 has been used as a cathode additive to improve the electrochemical performance of LiCoO2 based cathode system. 29 (5) Black Li2MoO3 is expected to have a higher electronic conductivity than the red Li 2 MnO3, based on their colors (Figure S1). (6) Our recent studies indicate that Li 2 MoO3 is pretty stable in air, ensuring the air-stability of its related compounds. 30 Therefore, Li2MoO3 is considered as a possible replacement of conventional Li2MnO3 in building new layer-structured x Li2MoO3 · (1 -x )Li M O2 cathode materials. The features Li2MoO3 demonstrated in this article such as the reversible Mo-ion migration to/from the Li vacancies in the transition metal layer and the quasi-reversible electron transfer to/from the O 2 -ions (without oxygen release) prove that Li2MoO3 can be an ideal replacement of Li 2 MnO3 in constructing novel Li-rich cathode materials x Li2MoO3 · (1 -x )Li M O2 with superior cycling stability, rate performance and safety. The basic fi ndings in this work will also shed light on understanding and improving the voltage and capacity dropping of the conventional x Li2MnO3 · (1 -x )Li M O2 materials.	in Li2MoO3 can exchange multiple electrons and supply a theoretical capacity up to 339 mAh g -1 . (2) Our fi rst-principles calculations indicate that Mo doping delays the oxygen release (i.e., oxygen evolution occurs only when more Li ions are extracted) and lowers the potential of lithium extraction of Li 2 MnO3, bene fi cial for improving its structural stability and compatibility with the electrolyte. 25 (3) The similarity of lattice parameter of the hexagonal Li2MoO3 to that of Li M O2 is bene fi cial for forming layer -layer solid solutions. 26 -28 (4) Although Li2MoO3 was ruled out as an independent cathode due to the disproportionation and migration of its Mo ions in the fi rst cycle, 21 that does not necessarily prevent it from becoming an ideal building block for constructing novel layerstructured cathode materials, x Li2MoO3 · (1 -x )Li M O2. Actually, x Li2MoO3 · (1 -x )LiFeO2 has been used as a cathode additive to improve the electrochemical performance of LiCoO2 based cathode system. 29 (5) Black Li2MoO3 is expected to have a higher electronic conductivity than the red Li 2 MnO3, based on their colors (Figure S1). (6) Our recent studies indicate that Li 2 MoO3 is pretty stable in air, ensuring the air-stability of its related compounds. 30 Therefore, Li2MoO3 is considered as a possible replacement of conventional Li2MnO3 in building new layer-structured x Li2MoO3 · (1 -x )Li M O2 cathode materials. The features Li2MoO3 demonstrated in this article such as the reversible Mo-ion migration to/from the Li vacancies in the transition metal layer and the quasi-reversible electron transfer to/from the O 2 -ions (without oxygen release) prove that Li2MoO3 can be an ideal replacement of Li 2 MnO3 in constructing novel Li-rich cathode materials x Li2MoO3 · (1 -x )Li M O2 with superior cycling stability, rate performance and safety. The basic fi ndings in this work will also shed light on understanding and improving the voltage and capacity dropping of the conventional x Li2MnO3 · (1 -x )Li M O2 materials.
2	5	4	28	#/texts/28	text	body	True	None	body	body						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	[60.49, 467.95, 239.99, 152.21]	Structure of As-Prepared Li2MoO3. The re fi ned XRD pattern of the as-prepared Li2MoO3 powder matches well with the α -NaFeO2 structure R 3 ̅ m with lattice constants a = 2.8675(9) Å and c = 14.8357(6) Å (Figure 1a and …	Structure of As-Prepared Li2MoO3. The re fi ned XRD pattern of the as-prepared Li2MoO3 powder matches well with the α -NaFeO2 structure R 3 ̅ m with lattice constants a = 2.8675(9) Å and c = 14.8357(6) Å (Figure 1a and …	Structure of As-Prepared Li2MoO3. The re fi ned XRD pattern of the as-prepared Li2MoO3 powder matches well with the α -NaFeO2 structure R 3 ̅ m with lattice constants a = 2.8675(9) Å and c = 14.8357(6) Å (Figure 1a and b and Supporting Information Table S1). The high intensity ratio (ca. 1.27) of (003)/(104) and clear splitting of the (018)/(110) di ff raction peaks suggest the well-de fi ned layered structure with very few antisite occupations concerning the Li + (3a site) and Mo 4+ (3b sites) ions in the as-prepared Li2MoO3. 31 -33 These are supported, in the atomic scale, with the investigation of STEM imaging (Figure 1c -f and Supporting Information Figure S2). These features ensure the good electrochemical performance of the material and the reliability of physical and electrochemical properties.	Structure of As-Prepared Li2MoO3. The re fi ned XRD pattern of the as-prepared Li2MoO3 powder matches well with the α -NaFeO2 structure R 3 ̅ m with lattice constants a = 2.8675(9) Å and c = 14.8357(6) Å (Figure 1a and b and Supporting Information Table S1). The high intensity ratio (ca. 1.27) of (003)/(104) and clear splitting of the (018)/(110) di ff raction peaks suggest the well-de fi ned layered structure with very few antisite occupations concerning the Li + (3a site) and Mo 4+ (3b sites) ions in the as-prepared Li2MoO3. 31 -33 These are supported, in the atomic scale, with the investigation of STEM imaging (Figure 1c -f and Supporting Information Figure S2). These features ensure the good electrochemical performance of the material and the reliability of physical and electrochemical properties.
2	6	5	29	#/texts/29#prov0	text	body	True	None	body	body						True	p2:body_region:0	bottom_margin	column_1_of_2	1	2	p2:bottom_margin:column_1_of_2:white	[255, 255, 255]	white	False	False	[60.49, 622.36, 240.0, 140.84]	It is worthwhile to point out that the contrast of the highangle annular-dark- fi eld (HAADF) image exhibits a Z 1.7 dependence as compared with Z 1/3 for the annular-brightfi eld (ABF) image with respect to the atomic …	It is worthwhile to point out that the contrast of the highangle annular-dark- fi eld (HAADF) image exhibits a Z 1.7 dependence as compared with Z 1/3 for the annular-brightfi eld (ABF) image with respect to the atomic …	It is worthwhile to point out that the contrast of the highangle annular-dark- fi eld (HAADF) image exhibits a Z 1.7 dependence as compared with Z 1/3 for the annular-brightfi eld (ABF) image with respect to the atomic number Z. 34,35 The ABF image unambiguously displays the 3a-sited Li, 3bsited Mo, and 6c-sited O-ion columns, while the HAADF image only displays the Mo-ion columns clearly. Due to the random distribution of the Li ions at the 3b sites, the 3b-sited Li-ion columns are superposed with the 3b-sited Mo-ion columns and could not be separately identi fi ed in Figure 1c and d. Figure 1e compares the line contrast pro fi les of the Li-, Mo- and O-ion columns along the [421 ̅ ] direction projected on the [100] zone axis. However, in the as-prepared Li2MoO3, the Mo-ion	It is worthwhile to point out that the contrast of the highangle annular-dark- fi eld (HAADF) image exhibits a Z 1.7 dependence as compared with Z 1/3 for the annular-brightfi eld (ABF) image with respect to the atomic number Z. 34,35 The ABF image unambiguously displays the 3a-sited Li, 3bsited Mo, and 6c-sited O-ion columns, while the HAADF image only displays the Mo-ion columns clearly. Due to the random distribution of the Li ions at the 3b sites, the 3b-sited Li-ion columns are superposed with the 3b-sited Mo-ion columns and could not be separately identi fi ed in Figure 1c and d. Figure 1e compares the line contrast pro fi les of the Li-, Mo- and O-ion columns along the [421 ̅ ] direction projected on the [100] zone axis. However, in the as-prepared Li2MoO3, the Mo-ion
2	7	8	32	#/texts/29#prov1	text	body	True	None	body	body						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	[324.45, 488.15, 240.02, 100.18]	columns show an αβγ -stacking with an irregular shift along the [010] direction (slipped O3 type; Supporting Information Figure S3), due to the presence of disordered Mo3O13 clusters in the Li -Mo layers (Supporting Inf…	columns show an αβγ -stacking with an irregular shift along the [010] direction (slipped O3 type; Supporting Information Figure S3), due to the presence of disordered Mo3O13 clusters in the Li -Mo layers (Supporting Inf…	columns show an αβγ -stacking with an irregular shift along the [010] direction (slipped O3 type; Supporting Information Figure S3), due to the presence of disordered Mo3O13 clusters in the Li -Mo layers (Supporting Information Figure S4). In addition, the presence of the short-range ordered distribution of the Mo3O13 clusters is evidenced by the strong and weak contrast alternation in some areas in Figure 1d and f. The areas without such alternation are attributed to the disordered Mo3O13 clusters (Supporting Information Figure S5).	columns show an αβγ -stacking with an irregular shift along the [010] direction (slipped O3 type; Supporting Information Figure S3), due to the presence of disordered Mo3O13 clusters in the Li -Mo layers (Supporting Information Figure S4). In addition, the presence of the short-range ordered distribution of the Mo3O13 clusters is evidenced by the strong and weak contrast alternation in some areas in Figure 1d and f. The areas without such alternation are attributed to the disordered Mo3O13 clusters (Supporting Information Figure S5).
2	9	9	33	#/texts/31	text	body	True	None	body	body						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	[324.45, 588.93, 240.03, 174.27]	Structural Transition and Mo-Ion Migration. Irreversible migration of the Mn ions into the transition metal layer to fi ll out the Li vacancies (a proposed layer-to-spinel transition) has been reported to be one of the …	Structural Transition and Mo-Ion Migration. Irreversible migration of the Mn ions into the transition metal layer to fi ll out the Li vacancies (a proposed layer-to-spinel transition) has been reported to be one of the …	Structural Transition and Mo-Ion Migration. Irreversible migration of the Mn ions into the transition metal layer to fi ll out the Li vacancies (a proposed layer-to-spinel transition) has been reported to be one of the causes for the capacity decay and discharge voltage dropping of the x Li2MnO3 · (1 -x )Li M O2 cathode materials. There are three charge plateaus but only one discharge slope in the fi rst-cycle voltage pro fi le of Li2MoO3 (Supporting Information Figure S6 -S8). The slope corresponds to a reversible capacity of 210 mAh g -1 (when cycled between 2.0 and 4.5 V vs Li/Li + ) or ca. 190 mAh g -1 (when cycled between 2.0 and 4.8 V)  any of which is much higher than that of Li2MnO3. 36 The fact that the material charged to 4.5 V should have a higher reversible capacity than the one charged to 4.8 V is attributed to the destructive structural variation of Li2MoO3 when too many Li ions are extracted.	Structural Transition and Mo-Ion Migration. Irreversible migration of the Mn ions into the transition metal layer to fi ll out the Li vacancies (a proposed layer-to-spinel transition) has been reported to be one of the causes for the capacity decay and discharge voltage dropping of the x Li2MnO3 · (1 -x )Li M O2 cathode materials. There are three charge plateaus but only one discharge slope in the fi rst-cycle voltage pro fi le of Li2MoO3 (Supporting Information Figure S6 -S8). The slope corresponds to a reversible capacity of 210 mAh g -1 (when cycled between 2.0 and 4.5 V vs Li/Li + ) or ca. 190 mAh g -1 (when cycled between 2.0 and 4.8 V)  any of which is much higher than that of Li2MnO3. 36 The fact that the material charged to 4.5 V should have a higher reversible capacity than the one charged to 4.8 V is attributed to the destructive structural variation of Li2MoO3 when too many Li ions are extracted.
3	3	2	37	#/texts/36	text	body	True	None	body	body						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	[60.49, 69.37, 240.0, 30.8]	In order to investigate the structural changes of Li2MoO3 during electrochemical (de)lithiation between 2.0 and 4.8 V, in situ XRD characterization was performed (Figure 2a and	In order to investigate the structural changes of Li2MoO3 during electrochemical (de)lithiation between 2.0 and 4.8 V, in situ XRD characterization was performed (Figure 2a and	In order to investigate the structural changes of Li2MoO3 during electrochemical (de)lithiation between 2.0 and 4.8 V, in situ XRD characterization was performed (Figure 2a and	In order to investigate the structural changes of Li2MoO3 during electrochemical (de)lithiation between 2.0 and 4.8 V, in situ XRD characterization was performed (Figure 2a and
