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layout_review.html excluded_blocks.json excluded_blocks.tsv final_body_blocks.tsv visual_assets.tsv original.pdf

Diff Summary

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Truncation

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Excluded Page Overlays

这些框显示被排除块,同时叠加真实图表资产框。青色虚线表示该 text block 被图表资产 caption 吸收;红色 STOP 是截断触发点,红色框是截断后被排除的块。

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Visual Assets

这是实际图表资产输出,不是审计层重新推断。

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1figureDocling Figure 11missing_caption0.55[196.92, 321.27, 246.16, 181.79]
2figureFig. 12direct_caption_ref0.82[131.0, 691.82, 342.01, 35.22]Fig. 1. The reaction mechanism of eliminating H2O and HF by nitriles.
3figureFig. 24direct_caption_ref0.82[74.37, 66.21, 457.39, 410.28]Fig. 2. (a) The conductivity of commercial electrolytes containing different weight ratios of succinonitrile at temperatures range from 30  C to 80  C. (b) LSV of the 1 M LiPF6/EC/ DEC commercial electrolyte with or without 1wt% SN. Working electrode: Pt, counter and reference electrodes: Li, scan rate: 1 mV s 1 . (c) Frontier molecular orbitals of EC, DEC and SN and their energies of occupied (HOMO) and unoccupied (LUMO) (in Ha). (d) Discharge capacity after 50 cycles of Li/Li1.2Ni0.2Mn0.6O2 half-cells containing various weight ratios of SN.
4figureFig. 34direct_caption_ref0.82[102.73, 543.9, 399.68, 163.5]Fig. 3. Ac impedance spectra of the Li/Li1.2Ni0.2Mn0.6O2 half-cells containing various weight ratios of SN: (a) After 1 cycles, (b) After 5 cycles.
5figureFig. 45direct_caption_ref0.82[107.9, 66.22, 370.32, 148.69]Fig. 4. TGA diagrams and DTG curves of commercial electrolyte (a) and 1wt % SN electrolyte (b).
6figureFig. 55direct_caption_ref0.82[35.06, 528.66, 245.99, 181.36]Fig. 5. Discharge capacities and coulombic ef fi ciencies of the Li/Li1.2Ni0.2Mn0.6O2 half-cells at a 0.1 C current density with or without 1wt % SN at 55  C, the inset displays SEM images of the batteries after 50 cycles.
7figureFig. 66direct_caption_ref0.82[116.85, 66.57, 371.3, 279.88]Fig. 6. Discharge capacities of Li/Li1.2Ni0.2Mn0.6O2 with 1wt% SN-based electrolyte at different cut-off voltages: (a) 2.0 e 4.8 V, (b) 2.0 e 4.9 V, (c) 2.0 e 5.0 V and (d) 2.0 e 5.2 V.
8figureFig. 76direct_caption_ref0.82[131.2, 382.85, 341.58, 172.34]Fig. 7. SEM images of the surface of LNMO cathode after 5 cycles with: (a) commercial electrolyte (b) 1wt% SN.
9figureFig. 87direct_caption_ref0.82[52.24, 66.75, 482.78, 295.51]Fig. 8. XPS spectra of the regions of Li1.2Ni0.2Mn0.6O2 after 50 cycles: (a) N1s with commercial electrolyte, (b) N1s with 1wt% SN-based electrolyte, (c) Mn2p with commercial electrolyte, (d) Mn2p with 1wt% SN-based electrolyte, (e) Ni2p with commercial electrolyte, (f) Ni2p with 1wt% SN-based electrolyte.

Excluded Blocks

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[32.83, 558.33, 107.65, 48.74]Article history: Received 16 July 2015 Received in revised form 27 October 2015 Accepted 28 October 2015 Available online 13 December 2015Article history: Received 16 July 2015 Received in revised form 27 October 2015 Accepted 28 October 2015 Available online 13 December 2015
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[32.83, 217.13, 438.2, 26.17]Renjie Chen a, b, * , Fan Liu a , Yan Chen a , Yusheng Ye a , Yongxin Huang a , Feng Wu a, b, ** , Li Li a, bRenjie Chen a, b, * , Fan Liu a , Yan Chen a , Yusheng Ye a , Yongxin Huang a , Feng Wu a, b, ** , Li Li a, b
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[197.23, 551.28, 355.66, 73.58]Succinonitrile (SN) has been used as functional additive to improve the thermal stability and broaden the oxidation electrochemical window of commercial electrolyte 1 M LiPF6/EC/DEC (1:1, by volume) for highvoltage LIBs (cathode: Li1.2Ni0.2Mn0.6O2, anode: Li). 1 wt % SN-based electrolyte showed a wide electrochemical oxidation window of 5.4 V vs Li þ /Li and excellent thermal stability demonstrated by thermogravimetry (TG) and X-ray photoelectron spectroscopy (XPS), as well as theoretical analysis according to molecular orbital theory. The LNMO (Li1.2Ni0.2Mn0.6O2) battery with 1 wt % SN-based electrolyte showed better cyclability and capacity retention when charged to higher cut-off voltage. The improved battery performance is mainly attributed to the formation of uniform cathode electrolyte interface (CEI)Succinonitrile (SN) has been used as functional additive to improve the thermal stability and broaden the oxidation electrochemical window of commercial electrolyte 1 M LiPF6/EC/DEC (1:1, by volume) for highvoltage LIBs (cathode: Li1.2Ni0.2Mn0.6O2, anode: Li). 1 wt % SN-based electrolyte showed a wide electrochemical oxidation window of 5.4 V vs Li þ /Li and excellent thermal stability demonstrated by thermogravimetry (TG) and X-ray photoelectron spectroscopy (XPS), as well as theoretical analysis according to molecular orbital theory. The LNMO (Li1.2Ni0.2Mn0.6O2) battery with 1 wt % SN-based electrolyte showed better cyclability and capacity retention when charged to higher cut-off voltage. The improved battery performance is mainly attributed to the formation of uniform cathode electrolyte interface (CEI)
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[42.52, 106.77, 87.78, 5.94]Cathode electrolyte interfaceCathode electrolyte interface
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[228.36, 47.78, 129.01, 6.37]Journal of Power Sources 306 (2016) 70 e 77Journal of Power Sources 306 (2016) 70 e 77
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[216.51, 79.77, 156.17, 1.59]Contents lists available at ScienceDirectContents lists available at ScienceDirect
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[210.56, 98.49, 167.92, 12.99]Journal of Power SourcesJournal of Power Sources
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[165.09, 135.72, 258.93, 1.59]j o urnal homepage: www.elsevier.com/locate/jpowsourj o urnal homepage:
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[32.83, 178.39, 420.44, 29.76]An investigation of functionalized electrolyte using succinonitrile additive for high voltage lithium-ion batteriesAn investigation of functionalized electrolyte using succinonitrile additive for high voltage lithium-ion batteries
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[32.82, 250.08, 437.89, 15.93]a School of Materials Science & Engineering, Beijing Key Laboratory of Environmental Science and Engineering, Beijing Institute of Technology, Beijing 100081, Chinaa School of Materials Science & Engineering, Beijing Key Laboratory of Environmental Science and Engineering, Beijing Institute of Technology, Beijing 100081, China
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[32.83, 267.2, 250.38, 7.37]b Collaborative Innovation Center of Electric Vehicles in Beijing, Beijing 100081, Chinab Collaborative Innovation Center of Electric Vehicles in Beijing, Beijing 100081, China
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[32.83, 305.29, 86.34, 0.06]h i g h l i g h t sh i g h l i g h t s
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[32.83, 537.0, 95.61, 0.06]a r t i c l e i n f oa r t i c l e i n f o
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[32.83, 648.88, 251.1, 24.01]* Corresponding author. School of Materials Science & Engineering, Beijing Key Laboratory of Environmental Science and Engineering, Beijing Institute of Technology, Beijing 100081, China.* Corresponding author. School of Materials Science & Engineering, Beijing Key Laboratory of Environmental Science and Engineering, Beijing Institute of Technology, Beijing 100081, China.
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[32.83, 675.13, 251.1, 23.95]** Corresponding author. School of Materials Science & Engineering, Beijing Key Laboratory of Environmental Science and Engineering, Beijing Institute of Technology, Beijing 100081, China.** Corresponding author. School of Materials Science & Engineering, Beijing Key Laboratory of Environmental Science and Engineering, Beijing Institute of Technology, Beijing 100081, China.
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[32.83, 701.71, 250.98, 14.5]E-mail addresses: chenrj@bit.edu.cn (R. Chen), wufeng863@vip.sina.com (F. Wu).E-mail addresses: chenrj@bit.edu.cn (R. Chen), wufeng863@vip.sina.com (F. Wu).
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[32.83, 728.64, 144.66, 5.94]http://dx.doi.org/10.1016/j.jpowsour.2015.10.105
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[32.83, 735.78, 156.13, 7.43]0378-7753/ © 2015 Elsevier B.V. All rights reserved.0378-7753/ © 2015 Elsevier B.V. All rights reserved.
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[197.22, 305.29, 152.63, 0.06]g r a p h i c a l a b s t r a c tg r a p h i c a l a b s t r a c t
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[197.23, 537.0, 67.73, 0.06]a b s t r a c ta b s t r a c t
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[42.52, 72.47, 51.66, 31.68]Keywords: Succinonitrile High voltage Thermal stabilityKeywords: Succinonitrile High voltage Thermal stability
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[42.52, 155.29, 62.12, 7.97]1. Introduction1. Introduction
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[218.72, 47.78, 167.65, 6.37]R. Chen et al. / Journal of Power Sources 306 (2016) 70 e 77R. Chen et al. / Journal of Power Sources 306 (2016) 70 e 77
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[555.48, 48.2, 7.11, 5.94]7171
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[425.93, 95.74, 136.69, 8.36]© 2015 Elsevier B.V. All rights reserved.© 2015 Elsevier B.V. All rights reserved.
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[311.53, 511.09, 65.35, 7.97]2. Experimental2. Experimental
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[311.53, 532.44, 139.92, 7.42]2.1. Preparation of electrolyte systems2.1. Preparation of electrolyte systems
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[199.33, 737.02, 206.37, 6.38]Fig. 1. The reaction mechanism of eliminating H2O and HF by nitriles.Fig. 1. The reaction mechanism of eliminating H2O and HF by nitriles.
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[32.83, 66.77, 229.41, 7.42]2.2. Preparation of the electrodes and the construction of cells2.2. Preparation of the electrodes and the construction of cells
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[32.83, 171.36, 129.89, 7.42]2.3. Electrochemical measurements2.3. Electrochemical measurements
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[32.83, 453.81, 116.72, 7.42]2.4. Materials characterizations2.4. Materials characterizations
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[32.83, 568.41, 105.41, 7.97]3. Results and discussions3. Results and discussions
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[209.03, 47.78, 167.65, 6.37]R. Chen et al. / Journal of Power Sources 306 (2016) 70 e 77R. Chen et al. / Journal of Power Sources 306 (2016) 70 e 77
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[218.72, 47.78, 167.65, 6.37]R. Chen et al. / Journal of Power Sources 306 (2016) 70 e 77R. Chen et al. / Journal of Power Sources 306 (2016) 70 e 77
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[42.52, 485.86, 520.07, 32.94]Fig. 2. (a) The conductivity of commercial electrolytes containing different weight ratios of succinonitrile at temperatures range from 30  C to 80  C. (b) LSV of the 1 M LiPF6/EC/ DEC commercial electrolyte with or without 1wt% SN. Working electrode: Pt, counter and reference electrodes: Li, scan rate: 1 mV s 1 . (c) Frontier molecular orbitals of EC, DEC and SN and their energies of occupied (HOMO) and unoccupied (LUMO) (in Ha). (d) Discharge capacity after 50 cycles of Li/Li1.2Ni0.2Mn0.6O2 half-cells containing various weight ratios of SN.Fig. 2. (a) The conductivity of commercial electrolytes containing different weight ratios of succinonitrile at temperatures range from 30  C to 80  C. (b) LSV of the 1 M LiPF6/EC/ DEC commercial electrolyte with or without 1wt% SN. Working electrode: Pt, counter and reference electrodes: Li, scan rate: 1 mV s 1 . (c) Frontier molecular orbitals of EC, DEC and SN and their energies of occupied (HOMO) and unoccupied (LUMO) (in Ha). (d) Discharge capacity after 50 cycles of Li/Li1.2Ni0.2Mn0.6O2 half-cells containing various weight ratios of SN.
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[95.02, 716.67, 415.04, 6.98]Fig. 3. Ac impedance spectra of the Li/Li1.2Ni0.2Mn0.6O2 half-cells containing various weight ratios of SN: (a) After 1 cycles, (b) After 5 cycles.Fig. 3. Ac impedance spectra of the Li/Li1.2Ni0.2Mn0.6O2 half-cells containing various weight ratios of SN: (a) After 1 cycles, (b) After 5 cycles.
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[150.29, 225.77, 285.11, 6.38]Fig. 4. TGA diagrams and DTG curves of commercial electrolyte (a) and 1wt % SN electrolyte (b).Fig. 4. TGA diagrams and DTG curves of commercial electrolyte (a) and 1wt % SN electrolyte (b).
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[32.82, 719.9, 251.05, 23.4]Fig. 5. Discharge capacities and coulombic ef fi ciencies of the Li/Li1.2Ni0.2Mn0.6O2 half-cells at a 0.1 C current density with or without 1wt % SN at 55  C, the inset displays SEM images of the batteries after 50 cycles.Fig. 5. Discharge capacities and coulombic ef fi ciencies of the Li/Li1.2Ni0.2Mn0.6O2 half-cells at a 0.1 C current density with or without 1wt % SN at 55  C, the inset displays SEM images of the batteries after 50 cycles.
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[209.03, 47.78, 167.65, 6.37]R. Chen et al. / Journal of Power Sources 306 (2016) 70 e 77R. Chen et al. / Journal of Power Sources 306 (2016) 70 e 77
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[218.72, 47.78, 167.65, 6.37]R. Chen et al. / Journal of Power Sources 306 (2016) 70 e 77R. Chen et al. / Journal of Power Sources 306 (2016) 70 e 77
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[555.25, 48.21, 7.29, 5.94]7575
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[49.04, 356.3, 506.98, 7.01]Fig. 6. Discharge capacities of Li/Li1.2Ni0.2Mn0.6O2 with 1wt% SN-based electrolyte at different cut-off voltages: (a) 2.0 e 4.8 V, (b) 2.0 e 4.9 V, (c) 2.0 e 5.0 V and (d) 2.0 e 5.2 V.Fig. 6. Discharge capacities of Li/Li1.2Ni0.2Mn0.6O2 with 1wt% SN-based electrolyte at different cut-off voltages: (a) 2.0 e 4.8 V, (b) 2.0 e 4.9 V, (c) 2.0 e 5.0 V and (d) 2.0 e 5.2 V.
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[137.93, 565.02, 329.18, 6.38]Fig. 7. SEM images of the surface of LNMO cathode after 5 cycles with: (a) commercial electrolyte (b) 1wt% SN.Fig. 7. SEM images of the surface of LNMO cathode after 5 cycles with: (a) commercial electrolyte (b) 1wt% SN.
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[32.82, 48.21, 7.05, 5.94]7676
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[209.03, 47.78, 167.65, 6.37]R. Chen et al. / Journal of Power Sources 306 (2016) 70 e 77R. Chen et al. / Journal of Power Sources 306 (2016) 70 e 77
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[32.82, 372.37, 520.08, 14.84]Fig. 8. XPS spectra of the regions of Li1.2Ni0.2Mn0.6O2 after 50 cycles: (a) N1s with commercial electrolyte, (b) N1s with 1wt% SN-based electrolyte, (c) Mn2p with commercial electrolyte, (d) Mn2p with 1wt% SN-based electrolyte, (e) Ni2p with commercial electrolyte, (f) Ni2p with 1wt% SN-based electrolyte.Fig. 8. XPS spectra of the regions of Li1.2Ni0.2Mn0.6O2 after 50 cycles: (a) N1s with commercial electrolyte, (b) N1s with 1wt% SN-based electrolyte, (c) Mn2p with commercial electrolyte, (d) Mn2p with 1wt% SN-based electrolyte, (e) Ni2p with commercial electrolyte, (f) Ni2p with 1wt% SN-based electrolyte.
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[32.83, 441.25, 55.77, 7.97]4. Conclusion4. Conclusion
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