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
2	8	7	18	#/texts/18	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	[51.02, 458.23, 238.16, 171.52]	All of the materials were synthesized by a co-precipitation method. The typical procedures were as follows. First, a certain amount of PEG was dissolved in deionized water, then 4.3076 g manganese acetate tetrahydrate (…	All of the materials were synthesized by a co-precipitation method. The typical procedures were as follows. First, a certain amount of PEG was dissolved in deionized water, then 4.3076 g manganese acetate tetrahydrate (…	All of the materials were synthesized by a co-precipitation method. The typical procedures were as follows. First, a certain amount of PEG was dissolved in deionized water, then 4.3076 g manganese acetate tetrahydrate (Mn(CH3COO)2 ⋅ 4H2O,99.0%,Kermel) and 1.9045 g nickel acetate tetrahydrate (Ni(CH3COO)2 ⋅ 4H2O, 98.0 %, Kermel) were added to the PEG solution. An oxalate co-precipitate of Mn and Ni was obtained by the dropwise addition of 4.0809 g oxalic acid dihydrate (C2H2O4 ⋅ 2H2O, 99.5 %, Enox), followed by aging, washing, and filtering, then drying overnight. The precipitate was then calcined at 550 °C for 5 h to obtain a binary oxide. Finally, the binary oxide was mixed with 1.4668 g lithium carbonate (Li2CO3, 97.0 %, Kermel) and then ball-milled for 2 h, followed by calcining at 900 °C in air for 15 h to obtain about 2.5 g Li[Li 0.167 Ni0.25Mn0.580]O2 [18].	All of the materials were synthesized by a co-precipitation method. The typical procedures were as follows. First, a certain amount of PEG was dissolved in deionized water, then 4.3076 g manganese acetate tetrahydrate (Mn(CH3COO)2 ⋅ 4H2O,99.0%,Kermel) and 1.9045 g nickel acetate tetrahydrate (Ni(CH3COO)2 ⋅ 4H2O, 98.0 %, Kermel) were added to the PEG solution. An oxalate co-precipitate of Mn and Ni was obtained by the dropwise addition of 4.0809 g oxalic acid dihydrate (C2H2O4 ⋅ 2H2O, 99.5 %, Enox), followed by aging, washing, and filtering, then drying overnight. The precipitate was then calcined at 550 °C for 5 h to obtain a binary oxide. Finally, the binary oxide was mixed with 1.4668 g lithium carbonate (Li2CO3, 97.0 %, Kermel) and then ball-milled for 2 h, followed by calcining at 900 °C in air for 15 h to obtain about 2.5 g Li[Li 0.167 Ni0.25Mn0.580]O2 [18].
2	9	8	19	#/texts/19	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	[51.03, 632.56, 238.21, 21.12]	For comparison, we prepared samples using the same procedures, but without PEG.	For comparison, we prepared samples using the same procedures, but without PEG.	For comparison, we prepared samples using the same procedures, but without PEG.	For comparison, we prepared samples using the same procedures, but without PEG.
2	11	10	21	#/texts/21	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	[51.03, 694.81, 238.09, 21.12]	The crystal structure of the materials was characterized on a TD3500 powder diffractometer (Tongda, China) operated at 40 kV	The crystal structure of the materials was characterized on a TD3500 powder diffractometer (Tongda, China) operated at 40 kV	The crystal structure of the materials was characterized on a TD3500 powder diffractometer (Tongda, China) operated at 40 kV	The crystal structure of the materials was characterized on a TD3500 powder diffractometer (Tongda, China) operated at 40 kV
2	12	12	23	#/texts/22	text	body	True	None	body	body						True	p2:body_region:1	front_matter	column_2_of_2	2	2	p2:front_matter:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.14, 59.73, 238.08, 71.02]	and 30 mA using CuK α as the radiation source. The particle size and morphology of the samples were examined using a Nova NanoSEM 430 scanning electronic microscope (SEM, Philips, the Netherlands). Thermogravimetric ana…	and 30 mA using CuK α as the radiation source. The particle size and morphology of the samples were examined using a Nova NanoSEM 430 scanning electronic microscope (SEM, Philips, the Netherlands). Thermogravimetric ana…	and 30 mA using CuK α as the radiation source. The particle size and morphology of the samples were examined using a Nova NanoSEM 430 scanning electronic microscope (SEM, Philips, the Netherlands). Thermogravimetric analysis was performed on a Q600 SDT thermal analyzer (TA Inc., USA) in the range of 30 -900 °C at a heating rate of 10 K min -1 in air.	and 30 mA using CuK α as the radiation source. The particle size and morphology of the samples were examined using a Nova NanoSEM 430 scanning electronic microscope (SEM, Philips, the Netherlands). Thermogravimetric analysis was performed on a Q600 SDT thermal analyzer (TA Inc., USA) in the range of 30 -900 °C at a heating rate of 10 K min -1 in air.
2	14	14	25	#/texts/24	text	body	True	None	body	body						True	p2:body_region:1	front_matter	column_2_of_2	2	2	p2:front_matter:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.14, 171.82, 238.19, 270.17]	Charge and discharge performance measurements were carried out with CR-2016 test cells using a lithium metal plate as the anode, Celgard 2400 single polypropylene as the separator, and 1 M lithium hexafluorophosphate (L…	Charge and discharge performance measurements were carried out with CR-2016 test cells using a lithium metal plate as the anode, Celgard 2400 single polypropylene as the separator, and 1 M lithium hexafluorophosphate (L…	Charge and discharge performance measurements were carried out with CR-2016 test cells using a lithium metal plate as the anode, Celgard 2400 single polypropylene as the separator, and 1 M lithium hexafluorophosphate (LiPF6) solution (EC/DMC = 1:1 in solvent) as the electrolyte. The cathode was prepared by mixing the cathode material with acetylene black and polyvinylidene fluoride using a weight ratio of 85:5:10 in N -methyl pyrrolidinone; this mixture was then cast on aluminum foil using the doctor blade technique and dried under vacuum at 80 °C overnight. Then, the electrodes with a diameter of 16 mm (or geometrical area of 2.0 cm -2 ) were obtained by cutting the material-coated foil with a mold; the loading of the cathode material on the electrode was obtained by weighing the electrode with balance. The charge and discharge measurements were performed galvanostatically on a Neware Battery Testing System (Shenzhen, China) at the desired current density, between 2 and 4.8 V (vs. Li + /Li) and at room temperature. Electrochemical impedance spectroscopy (EIS) measurements were performed using an IM6e electrochemical workstation (Zahner, Germany). The amplitude of the AC signal was 10 mV over a frequency range of 0.01-10 5 Hz. The lithium metal anode served as both counter and reference electrodes during the EIS measurements.	Charge and discharge performance measurements were carried out with CR-2016 test cells using a lithium metal plate as the anode, Celgard 2400 single polypropylene as the separator, and 1 M lithium hexafluorophosphate (LiPF6) solution (EC/DMC = 1:1 in solvent) as the electrolyte. The cathode was prepared by mixing the cathode material with acetylene black and polyvinylidene fluoride using a weight ratio of 85:5:10 in N -methyl pyrrolidinone; this mixture was then cast on aluminum foil using the doctor blade technique and dried under vacuum at 80 °C overnight. Then, the electrodes with a diameter of 16 mm (or geometrical area of 2.0 cm -2 ) were obtained by cutting the material-coated foil with a mold; the loading of the cathode material on the electrode was obtained by weighing the electrode with balance. The charge and discharge measurements were performed galvanostatically on a Neware Battery Testing System (Shenzhen, China) at the desired current density, between 2 and 4.8 V (vs. Li + /Li) and at room temperature. Electrochemical impedance spectroscopy (EIS) measurements were performed using an IM6e electrochemical workstation (Zahner, Germany). The amplitude of the AC signal was 10 mV over a frequency range of 0.01-10 5 Hz. The lithium metal anode served as both counter and reference electrodes during the EIS measurements.
2	17	17	28	#/texts/27	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	[306.14, 517.64, 238.2, 198.29]	Li[Li1/3 -2 x /3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) are generally recognized to be B composite ^ layered materials of Li2MnO3 and LiNi0.5Mn0.5O2. Because the Mn 4+ in Li2MnO3 is further oxidized only with difficulty, Li2M…	Li[Li1/3 -2 x /3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) are generally recognized to be B composite ^ layered materials of Li2MnO3 and LiNi0.5Mn0.5O2. Because the Mn 4+ in Li2MnO3 is further oxidized only with difficulty, Li2M…	Li[Li1/3 -2 x /3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) are generally recognized to be B composite ^ layered materials of Li2MnO3 and LiNi0.5Mn0.5O2. Because the Mn 4+ in Li2MnO3 is further oxidized only with difficulty, Li2MnO3 generally exhibits poor electrochemical performance. However, it can display perfect electrochemical performance after being combined with an appropriate amount of LiNi0.5Mn0.5O2. Indeed, the ratio of Li2MnO3 to LiNi0.5Mn0.5O2, or the ratio of Mn to Ni, plays an important role in the material ' s electrochemical performance. To optimize the composition, we prepared a series of samples with various ratios of Mn to Ni, as well as various corresponding ratios of Li to Mn: Li[Li0.263Ni0.10Mn0.633]O2, Li[Li0.233Ni0.15Mn0.617]O2, Li[Li0.200Ni0.20Mn0.600]O2, Li[Li0.167Ni0.25Mn0.580]O2, Li[Li0.133Ni0.30Mn0.567]O2, Li[Li0.110Ni0.35Mn0.550]O2, Li[Li0.106Ni0.40Mn0.533]O2, and Li[Li0.103Ni0.45Mn0.516]O2.	Li[Li1/3 -2 x /3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) are generally recognized to be B composite ^ layered materials of Li2MnO3 and LiNi0.5Mn0.5O2. Because the Mn 4+ in Li2MnO3 is further oxidized only with difficulty, Li2MnO3 generally exhibits poor electrochemical performance. However, it can display perfect electrochemical performance after being combined with an appropriate amount of LiNi0.5Mn0.5O2. Indeed, the ratio of Li2MnO3 to LiNi0.5Mn0.5O2, or the ratio of Mn to Ni, plays an important role in the material ' s electrochemical performance. To optimize the composition, we prepared a series of samples with various ratios of Mn to Ni, as well as various corresponding ratios of Li to Mn: Li[Li0.263Ni0.10Mn0.633]O2, Li[Li0.233Ni0.15Mn0.617]O2, Li[Li0.200Ni0.20Mn0.600]O2, Li[Li0.167Ni0.25Mn0.580]O2, Li[Li0.133Ni0.30Mn0.567]O2, Li[Li0.110Ni0.35Mn0.550]O2, Li[Li0.106Ni0.40Mn0.533]O2, and Li[Li0.103Ni0.45Mn0.516]O2.
3	3	2	30	#/texts/30	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	[51.02, 59.74, 238.17, 208.83]	The X-ray diffraction (XRD) patterns of the samples are shown in Fig. 1a. All of the samples can be assigned a NaFeO2 layer structure with space group R-3m, apart from some small peaks found in a 2 θ range of 20 -25° th…	The X-ray diffraction (XRD) patterns of the samples are shown in Fig. 1a. All of the samples can be assigned a NaFeO2 layer structure with space group R-3m, apart from some small peaks found in a 2 θ range of 20 -25° th…	The X-ray diffraction (XRD) patterns of the samples are shown in Fig. 1a. All of the samples can be assigned a NaFeO2 layer structure with space group R-3m, apart from some small peaks found in a 2 θ range of 20 -25° that belong to space group C2/m. These small peaks are relevant to the LiMn6 cation ordering that occurs in the transition metal layers of Li2MnO3. With an increase in the amount of Ni, those small peaks gradually disappear; in other words, the samples with Ni content above 0.35 completely belong to space group R-3m [19]. The sharp splits in (018)/(110) signify a layered structure and good structural compatibility between Li2MnO3 and LiNi0.5Mn0.5O2 [20]. However, Fig. 1b shows that the splits in (018)/(110) became increasingly flatter as the amount of Ni rose. The characteristics of the layered structure became less obvious, although this was perhaps simply because the Li2MnO3 was formed in the LiNi0.5Mn0.5O2 layer.	The X-ray diffraction (XRD) patterns of the samples are shown in Fig. 1a. All of the samples can be assigned a NaFeO2 layer structure with space group R-3m, apart from some small peaks found in a 2 θ range of 20 -25° that belong to space group C2/m. These small peaks are relevant to the LiMn6 cation ordering that occurs in the transition metal layers of Li2MnO3. With an increase in the amount of Ni, those small peaks gradually disappear; in other words, the samples with Ni content above 0.35 completely belong to space group R-3m [19]. The sharp splits in (018)/(110) signify a layered structure and good structural compatibility between Li2MnO3 and LiNi0.5Mn0.5O2 [20]. However, Fig. 1b shows that the splits in (018)/(110) became increasingly flatter as the amount of Ni rose. The characteristics of the layered structure became less obvious, although this was perhaps simply because the Li2MnO3 was formed in the LiNi0.5Mn0.5O2 layer.
3	4	3	31	#/texts/31#prov0	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	[51.02, 269.62, 238.11, 72.7]	To facilitate further understanding of the compound ' s structure, we list the ratios of I(003)/I(104) in Table 1. Ni 2+ may have traveled from the transition metal layer to the lithium layer, thereby hindering the path…	To facilitate further understanding of the compound ' s structure, we list the ratios of I(003)/I(104) in Table 1. Ni 2+ may have traveled from the transition metal layer to the lithium layer, thereby hindering the path…	To facilitate further understanding of the compound ' s structure, we list the ratios of I(003)/I(104) in Table 1. Ni 2+ may have traveled from the transition metal layer to the lithium layer, thereby hindering the path of Li + diffusion [17]. Higher ratios of I(003)/I(104), especially above 1.2, have been said to lead to better cationic order. Table 1 shows that all of the ratios	To facilitate further understanding of the compound ' s structure, we list the ratios of I(003)/I(104) in Table 1. Ni 2+ may have traveled from the transition metal layer to the lithium layer, thereby hindering the path of Li + diffusion [17]. Higher ratios of I(003)/I(104), especially above 1.2, have been said to lead to better cationic order. Table 1 shows that all of the ratios
3	5	13	41	#/texts/31#prov1	text	body	True	None	body	body						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	[306.14, 59.73, 238.05, 21.07]	were above 1.2, indicating that the samples had a structure that was beneficial for Li + diffusion.	were above 1.2, indicating that the samples had a structure that was beneficial for Li + diffusion.	were above 1.2, indicating that the samples had a structure that was beneficial for Li + diffusion.	were above 1.2, indicating that the samples had a structure that was beneficial for Li + diffusion.
3	6	14	42	#/texts/32	text	body	True	None	body	body						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	[306.14, 84.62, 238.14, 120.73]	Figure 2 shows the discharge curves of Li[Li1/3 -2 x /3Ni x Mn2/ 3 -x /3]O2 (0 < x <0.5) samples in the voltage range of 2.0 -4.8 V at 0.1 C. Their discharge capacities were respectively 125.8, 151.9, 230.7, 243.4, 221.…	Figure 2 shows the discharge curves of Li[Li1/3 -2 x /3Ni x Mn2/ 3 -x /3]O2 (0 < x <0.5) samples in the voltage range of 2.0 -4.8 V at 0.1 C. Their discharge capacities were respectively 125.8, 151.9, 230.7, 243.4, 221.…	Figure 2 shows the discharge curves of Li[Li1/3 -2 x /3Ni x Mn2/ 3 -x /3]O2 (0 < x <0.5) samples in the voltage range of 2.0 -4.8 V at 0.1 C. Their discharge capacities were respectively 125.8, 151.9, 230.7, 243.4, 221.5, 209.5, 213.7, and 204.7 mAh g -1 as the amount of Ni increased. Although Li[Li0.103Ni0.45Mn0.516]O2 had the highest discharge flat voltage, Li[Li0.167Ni0.25Mn0.580]O2 showed the highest discharge capacity and a higher discharge flat voltage. In addition, materials with lower Ni content have more commercial value because Ni is environmentally toxic.	Figure 2 shows the discharge curves of Li[Li1/3 -2 x /3Ni x Mn2/ 3 -x /3]O2 (0 < x <0.5) samples in the voltage range of 2.0 -4.8 V at 0.1 C. Their discharge capacities were respectively 125.8, 151.9, 230.7, 243.4, 221.5, 209.5, 213.7, and 204.7 mAh g -1 as the amount of Ni increased. Although Li[Li0.103Ni0.45Mn0.516]O2 had the highest discharge flat voltage, Li[Li0.167Ni0.25Mn0.580]O2 showed the highest discharge capacity and a higher discharge flat voltage. In addition, materials with lower Ni content have more commercial value because Ni is environmentally toxic.
3	7	15	43	#/texts/33	text	body	True	None	body	body						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	[306.14, 209.18, 238.17, 71.01]	In summary, Li[Li0.167Ni0.25Mn0.580]O2 had a higher discharge capacity, a more stable discharge voltage platform, and lower Ni content among the Li[Li1/3 -2 x /3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) materials examined, so w…	In summary, Li[Li0.167Ni0.25Mn0.580]O2 had a higher discharge capacity, a more stable discharge voltage platform, and lower Ni content among the Li[Li1/3 -2 x /3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) materials examined, so w…	In summary, Li[Li0.167Ni0.25Mn0.580]O2 had a higher discharge capacity, a more stable discharge voltage platform, and lower Ni content among the Li[Li1/3 -2 x /3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) materials examined, so we selected it to explore the effect of PEG on the electrochemical performance of Lirich layered lithium nickel -manganese oxides.	In summary, Li[Li0.167Ni0.25Mn0.580]O2 had a higher discharge capacity, a more stable discharge voltage platform, and lower Ni content among the Li[Li1/3 -2 x /3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) materials examined, so we selected it to explore the effect of PEG on the electrochemical performance of Lirich layered lithium nickel -manganese oxides.
4	4	3	104	#/texts/103	text	body	True	None	body	body						True	p4:body_region:0	page_body	column_1_of_2	1	2	p4:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[51.0, 241.88, 238.23, 125.33]	rate of 10 K min -1 . Since PEG1000 was selected as the dispersant, we investigated its thermal behavior using a TGA analyzer. There was an obvious continuous weight loss below 410 °C in the TG curve (reaching approxima…	rate of 10 K min -1 . Since PEG1000 was selected as the dispersant, we investigated its thermal behavior using a TGA analyzer. There was an obvious continuous weight loss below 410 °C in the TG curve (reaching approxima…	rate of 10 K min -1 . Since PEG1000 was selected as the dispersant, we investigated its thermal behavior using a TGA analyzer. There was an obvious continuous weight loss below 410 °C in the TG curve (reaching approximately 100 %) due to the evaporation of absorbed water and the decomposition of PEG. An endothermic peak appeared at 400 °C -the temperature at which maximum weight loss occurred. Considering the thermal behavior of nickel -manganese oxalate previously reported [21], we set the pre-sintering and post-sintering temperatures at 550 and 900 °C, respectively.	rate of 10 K min -1 . Since PEG1000 was selected as the dispersant, we investigated its thermal behavior using a TGA analyzer. There was an obvious continuous weight loss below 410 °C in the TG curve (reaching approximately 100 %) due to the evaporation of absorbed water and the decomposition of PEG. An endothermic peak appeared at 400 °C -the temperature at which maximum weight loss occurred. Considering the thermal behavior of nickel -manganese oxalate previously reported [21], we set the pre-sintering and post-sintering temperatures at 550 and 900 °C, respectively.
4	5	4	105	#/texts/104	text	body	True	None	body	body						True	p4:body_region:0	page_body	column_1_of_2	1	2	p4:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[51.0, 370.97, 238.2, 120.73]	Figure 4a shows the discharge capacity of the samples with different amounts of PEG at various rates between 2 and 4.8 V . The electrochemical performance significantly improved when the PEG content was 9 wt%, but dropp…	Figure 4a shows the discharge capacity of the samples with different amounts of PEG at various rates between 2 and 4.8 V . The electrochemical performance significantly improved when the PEG content was 9 wt%, but dropp…	Figure 4a shows the discharge capacity of the samples with different amounts of PEG at various rates between 2 and 4.8 V . The electrochemical performance significantly improved when the PEG content was 9 wt%, but dropped when the PEG content was lower (3 and 6 wt%) or higher (12 wt%). This may have been because a certain amount of PEG induced viscosity, caused special intermolecular forces, and restricted the growth of Ni/Mn oxalate particles. However, an inappropriate amount of PEG might have led to uncontrollable particle growth, resulting in further agglomeration.	Figure 4a shows the discharge capacity of the samples with different amounts of PEG at various rates between 2 and 4.8 V . The electrochemical performance significantly improved when the PEG content was 9 wt%, but dropped when the PEG content was lower (3 and 6 wt%) or higher (12 wt%). This may have been because a certain amount of PEG induced viscosity, caused special intermolecular forces, and restricted the growth of Ni/Mn oxalate particles. However, an inappropriate amount of PEG might have led to uncontrollable particle growth, resulting in further agglomeration.
4	6	5	106	#/texts/105	text	body	True	None	body	body						True	p4:body_region:0	page_body	column_1_of_2	1	2	p4:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[51.02, 495.53, 238.19, 33.54]	The discharge curves of PEG-Li[Li0.167Ni0.25Mn0.580]O2 samples at 2 C are shown in Fig. 4b. The discharge capacities decreased drastically when the amount of PEG was 3, 6, or	The discharge curves of PEG-Li[Li0.167Ni0.25Mn0.580]O2 samples at 2 C are shown in Fig. 4b. The discharge capacities decreased drastically when the amount of PEG was 3, 6, or	The discharge curves of PEG-Li[Li0.167Ni0.25Mn0.580]O2 samples at 2 C are shown in Fig. 4b. The discharge capacities decreased drastically when the amount of PEG was 3, 6, or	The discharge curves of PEG-Li[Li0.167Ni0.25Mn0.580]O2 samples at 2 C are shown in Fig. 4b. The discharge capacities decreased drastically when the amount of PEG was 3, 6, or
4	85	43	144	#/texts/184	text	body	True	None	body	body						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	[306.15, 271.42, 238.21, 58.48]	12 wt%. Although the discharge capacity increased only a little with 9 wt% PEG, the discharge voltage was about 0.5 V higher than that of the material without PEG; hence, the energy density improved significantly after …	12 wt%. Although the discharge capacity increased only a little with 9 wt% PEG, the discharge voltage was about 0.5 V higher than that of the material without PEG; hence, the energy density improved significantly after …	12 wt%. Although the discharge capacity increased only a little with 9 wt% PEG, the discharge voltage was about 0.5 V higher than that of the material without PEG; hence, the energy density improved significantly after the addition of 9 wt% PEG.	12 wt%. Although the discharge capacity increased only a little with 9 wt% PEG, the discharge voltage was about 0.5 V higher than that of the material without PEG; hence, the energy density improved significantly after the addition of 9 wt% PEG.
4	86	44	145	#/texts/185	text	body	True	None	body	body						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	[306.14, 333.67, 238.15, 270.18]	We examined the cycling performance of bare Li[Li0.167 Ni 0.25 Mn 0.580 ] O 2 and 9 wt% PEGLi[Li0.167Ni0.25Mn0.580]O2 at discharge rates of 0.5 -2 C (Fig. 5a, b). Li[Li0.167Ni0.25Mn0.580]O2 showed excellent performance …	We examined the cycling performance of bare Li[Li0.167 Ni 0.25 Mn 0.580 ] O 2 and 9 wt% PEGLi[Li0.167Ni0.25Mn0.580]O2 at discharge rates of 0.5 -2 C (Fig. 5a, b). Li[Li0.167Ni0.25Mn0.580]O2 showed excellent performance …	We examined the cycling performance of bare Li[Li0.167 Ni 0.25 Mn 0.580 ] O 2 and 9 wt% PEGLi[Li0.167Ni0.25Mn0.580]O2 at discharge rates of 0.5 -2 C (Fig. 5a, b). Li[Li0.167Ni0.25Mn0.580]O2 showed excellent performance at both 0.5 and 1 C, with a capacity retention of almost 100 %. But when the discharge rate was raised to 2 C, the discharge capacity dropped to 81.69 mAh g -1 at the 100th cycle, and the capacity retention was only 57.76 %. At a high discharge rate, Li + would have moved quickly, so the material ' s structure would have been easily distorted. Hence, having a more stable structure was the key to improving the cycling performance at a high discharge rate. After 9 wt% PEG was added, not only did the capacity at a low discharge rate remain almost the same, but the cycling performance at a high discharge rate (2 C) was also somewhat improved. At 2 C, the discharge capacity of the material with 9 wt% PEG was 120 mAh g -1 at the 80th cycle and gradually stabilized by the last 20 cycles. Although the discharge capacity still faded around 30 mAh g -1 , the cycling performance was somewhat improved by the addition of PEG.	We examined the cycling performance of bare Li[Li0.167 Ni 0.25 Mn 0.580 ] O 2 and 9 wt% PEGLi[Li0.167Ni0.25Mn0.580]O2 at discharge rates of 0.5 -2 C (Fig. 5a, b). Li[Li0.167Ni0.25Mn0.580]O2 showed excellent performance at both 0.5 and 1 C, with a capacity retention of almost 100 %. But when the discharge rate was raised to 2 C, the discharge capacity dropped to 81.69 mAh g -1 at the 100th cycle, and the capacity retention was only 57.76 %. At a high discharge rate, Li + would have moved quickly, so the material ' s structure would have been easily distorted. Hence, having a more stable structure was the key to improving the cycling performance at a high discharge rate. After 9 wt% PEG was added, not only did the capacity at a low discharge rate remain almost the same, but the cycling performance at a high discharge rate (2 C) was also somewhat improved. At 2 C, the discharge capacity of the material with 9 wt% PEG was 120 mAh g -1 at the 80th cycle and gradually stabilized by the last 20 cycles. Although the discharge capacity still faded around 30 mAh g -1 , the cycling performance was somewhat improved by the addition of PEG.
4	87	74	175	#/texts/186	text	body	True	None	body	body						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	[306.13, 607.67, 238.18, 108.26]	To clarify the influence of 9 wt% PEG on the electro chemical performance of Li[Li0.167Ni0.25Mn0.580]O2 at the high discharge rate of 2 C, we present in Fig. 5c, d the 10th, 20th, 40th, 60th, 80th, and 100th discharge c…	To clarify the influence of 9 wt% PEG on the electro chemical performance of Li[Li0.167Ni0.25Mn0.580]O2 at the high discharge rate of 2 C, we present in Fig. 5c, d the 10th, 20th, 40th, 60th, 80th, and 100th discharge c…	To clarify the influence of 9 wt% PEG on the electro chemical performance of Li[Li0.167Ni0.25Mn0.580]O2 at the high discharge rate of 2 C, we present in Fig. 5c, d the 10th, 20th, 40th, 60th, 80th, and 100th discharge curves of Li[Li0.167Ni0.25Mn0.580]O2 before and after the addition of 9 wt% PEG. The discharge capacities at different cycles are shown in Table 2. Figure 5c shows that the discharge capacity and midpoint potential both faded quickly after the 20th cycle. Notably, the midpoint potential of the discharge profile at the	To clarify the influence of 9 wt% PEG on the electro chemical performance of Li[Li0.167Ni0.25Mn0.580]O2 at the high discharge rate of 2 C, we present in Fig. 5c, d the 10th, 20th, 40th, 60th, 80th, and 100th discharge curves of Li[Li0.167Ni0.25Mn0.580]O2 before and after the addition of 9 wt% PEG. The discharge capacities at different cycles are shown in Table 2. Figure 5c shows that the discharge capacity and midpoint potential both faded quickly after the 20th cycle. Notably, the midpoint potential of the discharge profile at the
5	48	48	236	#/texts/234	text	body	True	None	body	body						True	p5:body_region:0	page_body	column_1_of_2	1	2	p5:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[51.02, 246.14, 238.19, 58.48]	100th cycle was only about 2.6 V. However, after the addition of 9 wt% PEG, the discharge curves remained almost the same up to the 40th cycle. The discharge capacity dropped to 120 mAh g -1 at the 80th cycle, but later…	100th cycle was only about 2.6 V. However, after the addition of 9 wt% PEG, the discharge curves remained almost the same up to the 40th cycle. The discharge capacity dropped to 120 mAh g -1 at the 80th cycle, but later…	100th cycle was only about 2.6 V. However, after the addition of 9 wt% PEG, the discharge curves remained almost the same up to the 40th cycle. The discharge capacity dropped to 120 mAh g -1 at the 80th cycle, but later, the discharge capacity and midpoint potential both gradually stabilized.	100th cycle was only about 2.6 V. However, after the addition of 9 wt% PEG, the discharge curves remained almost the same up to the 40th cycle. The discharge capacity dropped to 120 mAh g -1 at the 80th cycle, but later, the discharge capacity and midpoint potential both gradually stabilized.
5	49	49	237	#/texts/235#prov0	text	body	True	None	body	body						True	p5:body_region:0	page_body	column_1_of_2	1	2	p5:page_body:column_1_of_2:white	[255, 255, 255]	white	False	False	[51.02, 308.39, 238.12, 58.6]	In summary, adding 9 wt% PEG had a positive effect on the electrochemical performance of Li[Li0.167Ni0.25Mn0.580]O2. This material had better cycling stability, higher discharge capacity, and greater energy density. To …	In summary, adding 9 wt% PEG had a positive effect on the electrochemical performance of Li[Li0.167Ni0.25Mn0.580]O2. This material had better cycling stability, higher discharge capacity, and greater energy density. To …	In summary, adding 9 wt% PEG had a positive effect on the electrochemical performance of Li[Li0.167Ni0.25Mn0.580]O2. This material had better cycling stability, higher discharge capacity, and greater energy density. To determine what contributed to this material ' s excellent electrochemical performance,	In summary, adding 9 wt% PEG had a positive effect on the electrochemical performance of Li[Li0.167Ni0.25Mn0.580]O2. This material had better cycling stability, higher discharge capacity, and greater energy density. To determine what contributed to this material ' s excellent electrochemical performance,
5	50	85	273	#/texts/235#prov1	text	body	True	None	body	body						True	p5:body_region:1	page_body	column_2_of_2	2	2	p5:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.14, 246.14, 238.11, 33.53]	we examined the effect of PEG on the phase purity, morphology, and impedance of Li[Li0.167Ni0.25Mn0.580]O2 using XRD, SEM, and EIS.	we examined the effect of PEG on the phase purity, morphology, and impedance of Li[Li0.167Ni0.25Mn0.580]O2 using XRD, SEM, and EIS.	we examined the effect of PEG on the phase purity, morphology, and impedance of Li[Li0.167Ni0.25Mn0.580]O2 using XRD, SEM, and EIS.	we examined the effect of PEG on the phase purity, morphology, and impedance of Li[Li0.167Ni0.25Mn0.580]O2 using XRD, SEM, and EIS.
5	51	86	274	#/texts/236	text	body	True	None	body	body						True	p5:body_region:1	page_body	column_2_of_2	2	2	p5:page_body:column_2_of_2:white	[255, 255, 255]	white	False	False	[306.14, 283.5, 238.15, 83.37]	The XRD patterns of bare Li[Li0.167Ni0.25Mn0.580]O2 and 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2 are shown in Fig. 1c. The splits in (018)/(110) sharpened and the XRD patterns in the 20 -25° 2 θ range became flatter after 9…	The XRD patterns of bare Li[Li0.167Ni0.25Mn0.580]O2 and 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2 are shown in Fig. 1c. The splits in (018)/(110) sharpened and the XRD patterns in the 20 -25° 2 θ range became flatter after 9…	The XRD patterns of bare Li[Li0.167Ni0.25Mn0.580]O2 and 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2 are shown in Fig. 1c. The splits in (018)/(110) sharpened and the XRD patterns in the 20 -25° 2 θ range became flatter after 9 wt% PEG was added. We suggest that 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2 had a better NaFeO2 layer structure, which was beneficial for Li + diffusion.	The XRD patterns of bare Li[Li0.167Ni0.25Mn0.580]O2 and 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2 are shown in Fig. 1c. The splits in (018)/(110) sharpened and the XRD patterns in the 20 -25° 2 θ range became flatter after 9 wt% PEG was added. We suggest that 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2 had a better NaFeO2 layer structure, which was beneficial for Li + diffusion.
6	25	25	366	#/texts/362#prov1	text	body	True	None	body	body						True	p6:body_region:0	page_body	right_crossing	None	None	p6:page_body:right_crossing:white	[255, 255, 255]	white	False	False	[306.13, 175.39, 238.18, 207.92]	Figure 6a presents the Nyquist plots and equivalent circuits for bare Li[Li0.167Ni0.25Mn0.580]O2 and 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2 after 100 cycles at 2 C to study the electrode/electrolyte interfacial properties…	Figure 6a presents the Nyquist plots and equivalent circuits for bare Li[Li0.167Ni0.25Mn0.580]O2 and 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2 after 100 cycles at 2 C to study the electrode/electrolyte interfacial properties…	Figure 6a presents the Nyquist plots and equivalent circuits for bare Li[Li0.167Ni0.25Mn0.580]O2 and 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2 after 100 cycles at 2 C to study the electrode/electrolyte interfacial properties. Both Nyquist plots show one semicircle in the highfrequency region, which is related to the charge transfer process ( R ct ), and a slope in the low-frequency region, which is attributable to a semi-infinite Warburg diffusion process in the electrode bulk. R s represents the internal resistivity of the battery, which corresponds to the x value of the first point of the Nyquist plots [4]. The transfer resistance ( R ct ) of Li[Li0.167Ni0.25Mn0.580]O2 was 424.7 Ω after 100 cycles at 2 C, then dropped to 181.8 Ω with 9 wt% PEG. This indicates the fast interfacial kinetics of 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2 arising from the structural change that occurred after the addition of PEG.	Figure 6a presents the Nyquist plots and equivalent circuits for bare Li[Li0.167Ni0.25Mn0.580]O2 and 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2 after 100 cycles at 2 C to study the electrode/electrolyte interfacial properties. Both Nyquist plots show one semicircle in the highfrequency region, which is related to the charge transfer process ( R ct ), and a slope in the low-frequency region, which is attributable to a semi-infinite Warburg diffusion process in the electrode bulk. R s represents the internal resistivity of the battery, which corresponds to the x value of the first point of the Nyquist plots [4]. The transfer resistance ( R ct ) of Li[Li0.167Ni0.25Mn0.580]O2 was 424.7 Ω after 100 cycles at 2 C, then dropped to 181.8 Ω with 9 wt% PEG. This indicates the fast interfacial kinetics of 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2 arising from the structural change that occurred after the addition of PEG.
6	28	27	368	#/texts/365#prov0	text	body	True	None	body	body						True	p6:body_region:0	page_body	right_crossing	None	None	p6:page_body:right_crossing:white	[255, 255, 255]	white	False	False	[306.14, 387.14, 238.1, 34.49]	Figure 7a, b pr e s e n t s t h e morphology of Li[Li0.167Ni0.25Mn0.580]O2 particles with and without 9 wt% PEG. Li[Li0.167Ni0.25Mn0.580]O2 shows a	Figure 7a, b pr e s e n t s t h e morphology of Li[Li0.167Ni0.25Mn0.580]O2 particles with and without 9 wt% PEG. Li[Li0.167Ni0.25Mn0.580]O2 shows a	Figure 7a, b pr e s e n t s t h e morphology of Li[Li0.167Ni0.25Mn0.580]O2 particles with and without 9 wt% PEG. Li[Li0.167Ni0.25Mn0.580]O2 shows a	Figure 7a, b pr e s e n t s t h e morphology of Li[Li0.167Ni0.25Mn0.580]O2 particles with and without 9 wt% PEG. Li[Li0.167Ni0.25Mn0.580]O2 shows a
7	1	2	371	#/texts/365#prov1	text	body	True	None	body	body						True	p7:body_region:0	front_matter	column_1_of_2	1	2	p7:front_matter:column_1_of_2:white	[255, 255, 255]	white	False	False	[51.02, 59.74, 238.14, 58.42]	range of particle sizes (Fig. 7a), including more large particles than 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2. Hence, this PEG-assisted co-precipitation synthesis method resulted in more uniform particle size and reduced …	range of particle sizes (Fig. 7a), including more large particles than 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2. Hence, this PEG-assisted co-precipitation synthesis method resulted in more uniform particle size and reduced …	range of particle sizes (Fig. 7a), including more large particles than 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2. Hence, this PEG-assisted co-precipitation synthesis method resulted in more uniform particle size and reduced the degree of agglomeration.	range of particle sizes (Fig. 7a), including more large particles than 9 wt% PEG-Li[Li0.167Ni0.25Mn0.580]O2. Hence, this PEG-assisted co-precipitation synthesis method resulted in more uniform particle size and reduced the degree of agglomeration.
7	5	4	373	#/texts/369	text	body	True	None	body	body						True	p7:body_region:0	front_matter	column_1_of_2	1	2	p7:front_matter:column_1_of_2:white	[255, 255, 255]	white	False	False	[51.02, 159.74, 238.21, 182.98]	Based on the above TG/DTA results, the weight loss below 410 °C was about 100 % and the post-sintering temperature was set at 550 °C. Thus, we suggest that PEG plays a role in the formation of Mn(Ni)C2O4, but not in the…	Based on the above TG/DTA results, the weight loss below 410 °C was about 100 % and the post-sintering temperature was set at 550 °C. Thus, we suggest that PEG plays a role in the formation of Mn(Ni)C2O4, but not in the…	Based on the above TG/DTA results, the weight loss below 410 °C was about 100 % and the post-sintering temperature was set at 550 °C. Thus, we suggest that PEG plays a role in the formation of Mn(Ni)C2O4, but not in the final procedure. The schematic illustration of the formation of PEG-Li[Li 1/3 -2 x / 3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) is shown in Fig. 7c. PEG is a good dispersant; nickel and manganese ions disperse uniformly in PEG and results in a uniform nickel -manganese oxalate precipitate, and the final material has a better NaFeO2 layer structure, which is beneficial for Li + diffusion. In addition, PEG has high viscosity, which can restrict the growth rate of particles. This synthesis method therefore can yield lithiumrich oxides with a small, uniform particle size, not only shortening the path of Li + insertion/desertion but also reducing the transfer resistance within a battery.	Based on the above TG/DTA results, the weight loss below 410 °C was about 100 % and the post-sintering temperature was set at 550 °C. Thus, we suggest that PEG plays a role in the formation of Mn(Ni)C2O4, but not in the final procedure. The schematic illustration of the formation of PEG-Li[Li 1/3 -2 x / 3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) is shown in Fig. 7c. PEG is a good dispersant; nickel and manganese ions disperse uniformly in PEG and results in a uniform nickel -manganese oxalate precipitate, and the final material has a better NaFeO2 layer structure, which is beneficial for Li + diffusion. In addition, PEG has high viscosity, which can restrict the growth rate of particles. This synthesis method therefore can yield lithiumrich oxides with a small, uniform particle size, not only shortening the path of Li + insertion/desertion but also reducing the transfer resistance within a battery.
7	7	6	375	#/texts/371	text	body	True	None	body	body						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	[51.02, 396.72, 238.2, 120.85]	In this work, we studied the effect of the Ni/Mn ratio on the electrochemical performance of Li-rich layered lithium nickel -manganese oxides. Among the Li[Li1/3 -2 x /3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) materials, Li[Li…	In this work, we studied the effect of the Ni/Mn ratio on the electrochemical performance of Li-rich layered lithium nickel -manganese oxides. Among the Li[Li1/3 -2 x /3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) materials, Li[Li…	In this work, we studied the effect of the Ni/Mn ratio on the electrochemical performance of Li-rich layered lithium nickel -manganese oxides. Among the Li[Li1/3 -2 x /3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) materials, Li[Li0.167Ni0.25Mn0.580]O2 delivered the highest discharge capacity, had a more stable discharge voltage platform, and had a lower Ni content. We then explored the effect of PEG on the electrochemical performance of Li[Li0.167Ni0.25Mn0.580]O2, finding that 9 wt% PEG was the most effective. We also have explained the mechanism of PEG ' s positive effect.	In this work, we studied the effect of the Ni/Mn ratio on the electrochemical performance of Li-rich layered lithium nickel -manganese oxides. Among the Li[Li1/3 -2 x /3Ni x Mn2/3 -x /3]O2 (0 < x < 0.5) materials, Li[Li0.167Ni0.25Mn0.580]O2 delivered the highest discharge capacity, had a more stable discharge voltage platform, and had a lower Ni content. We then explored the effect of PEG on the electrochemical performance of Li[Li0.167Ni0.25Mn0.580]O2, finding that 9 wt% PEG was the most effective. We also have explained the mechanism of PEG ' s positive effect.
