Citation:
Zhang Wenlin, Lan Xiaoyan, Shi Ziwei, Li Chunli. Research Progress in New-Type High Voltage Electrolyte used for Lithium Batteries[J]. Chemistry,
;2017, 80(11): 1021-1026.
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Traditional carbonate electrolyte can be easily oxidized and decomposed continuously under high pressure condition, which seriously restricts the development of high voltage lithium battery. Therefore, it is necessary for designers to follow the principles of sustainable development and green chemistry in designing and synthesizing new high-pressure electrolytes. The dominating reasons why carbonate-based electrolyte under high pressure condition can be oxidized and the status of the traditional electrolytes are described in this paper. In addition to that, the recent advances of new several high-pressure electrolytes such as novel carbonates, nitriles, sulfones and ionic liquids are reviewed. The effect and mechanism of the electrolyte under high pressure are discussed in detail, which provide the direction for enhancing the stability of electrolyte, reducing the viscosity, improving the conductivity as well as safety performance, and lay the foundation for the further industrialization of high-pressure electrolyte.
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Keywords:
- Ionic liquids,
- Electrolyte,
- Viscosity,
- Conductivity
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[1]
M Armand, J M Tarason. Nature, 2008, 451(7179): 652~657.
-
[2]
X Zhang, P N Ross, R Kostecki et al. J. Electrochem. Soc., 2000, 148(5): A463~A470.
-
[3]
B Z Li, L D Xing, M Q Xu et al. Electrochem. Commun., 2013, 34: 48~51.
-
[4]
X D Xiang, X Q Li, W S Li et al. J. Power Sources, 2013, 230: 89~95.
-
[5]
R Santhanam, B Rambabu. J. Power Sources, 2010, 195(17): 5442~5451.
-
[6]
J Liu, A Manthiram. J. Electrochem. Soc., 2008, 156(1): A66~A72.
-
[7]
J Liu, A Manthiram. J. Electrochem. Soc., 2009, 156(12): A833~A838.
-
[8]
S Ferrari, E Quartarone, C Tomasi et al. J. Power Sources, 2013, 235(4): 142~147.
- [9]
- [10]
-
[11]
M Moshkovich, M Cojocaru, H E Gottlieb et al. Electroanal. Chem., 2001, 497: 84~96.
-
[12]
S Tan, Y J Ji, Z R Zhang et al. ChemPhysChem, 2014, 15(10): 1956~1969.
-
[13]
L D Xing, O Borodin. Phys. Chem. Chem. Phys., 2012, 14: 12838~12843.
-
[14]
Y T Wang, L D Xing, W S Li et al. J. Phys. Chem. Lett., 2013, 4(22): 3992~3999.
-
[15]
J Vatamanu, O Borodin, G D Smith. J. Phys. Chem. C, 2012, 116(1): 1114~1121.
-
[16]
Y Zhu, Y Li, M D Casselman et al. J. Power Sources, 2014, 246(3): 184~191.
-
[17]
J Im, J Lee, M H Ryou et al. J. Electrochem. Soc., 2017, 164(1): A6381~A6385.
-
[18]
R Wagmer, S Brox, D R Gallus et al. Electrochem. Commun., 2014, 40(3): 80~83.
-
[19]
J J Yun, L Zhang, Q T Qu et al. Electrochimica Acta, 2015, 167: 151~159.
-
[20]
C C Su, M He, C Peebles et al. J. Electrochem. Soc., 2014, 157: A1777~A1781.
-
[21]
K Xu, S Zhang, J LAllen et al. J. Electrochem. Soc., 2003, 150(2): A170~A175.
-
[22]
S S Zhang, K Xu, T R Jow. J. Electrochem. Soc., 2002, 5(9): A206~A208.
-
[23]
S S Zhang, K Xu, T R Jow. J. Power Sources, 2003, 113(1): 166~172.
-
[24]
N V Aspern, S Röser, B R Rad et al. J. Fluorine Chem., 2017, 198: 24~33.
-
[25]
Z D Li, Y C Zhang, H F Xiang et al. J. Power Sources, 2013, 240: 471~475.
-
[26]
J Xia, L Madec, L Ma et al. J. Power Sources, 2015, 295: 203~211.
- [27]
-
[28]
Y Li, T Markmaitree, B L Lucht. J. Power Sources, 2011, 196(4): 2251~2254.
-
[29]
X X Zuo, C J Fan, J S Liu et al. J. Power Sources, 2013, 229: 308~312.
-
[30]
M Xu, L Zhou, Y Dong et al. Energy Environ. Sci., 2016, 9(4): 1308~1319.
-
[31]
H Duncan, N Salem, Y Abu-Lebdeh. J. Electrochem. Soc., 160(6): A838~A848.
-
[32]
T Q Yong, J L Wang, Y J Maii et al. J. Power Sources, 2014, 254(15): 29~32.
-
[33]
Y Abu-Lebdeh, I Davidson. J. Electrochem. Soc., 2009, 156(1): A60~A65.
-
[34]
Y Abu-Lebdeh, I Davidson. J. Power Sources, 2009, 189(1): 576~579.
-
[35]
A J Gmitter, I Plitz, G G Amatucci. J. Electrochem. Soc., 2012, 159(4): A370~A379.
-
[36]
N Salem, H Duncan, P Whitfield et al. ECS Meeting, 2013, 66: 323.
-
[37]
B Xie, Y G Mai, J L Wang et al. Ionics, 2015, 21(4): 909~915.
-
[38]
K Xu, C A Angell. J. Electrochem. Soc., 2002, 149(7): A920~A926.
- [39]
-
[40]
L G Xue, S Y Lee, Z F Zhao et al. J. Power Sources, 2015, 295: 190~196.
-
[41]
X G Sun, C A Angell. Electrochem. Commun., 2005, 7(3): 261~266.
-
[42]
X G Sun, C A Angell. Electrochem. Commun., 2009, 11(7): 1418~1421.
-
[43]
L E Ouatani, R Dedryvere, C Siret et al. J. Electrochem. Soc., 2009, 156(2): A103~A113.
-
[44]
S Y Li, Y Y Zhao, X M Shi et al. Electrochim. Acta, 2012, 65: 221~227.
-
[45]
Mao, B Li, X Cui et al. Electrochim. Acta, 2012, 79: 197~201.
-
[46]
F Wu, Q Z Zhu, R J Chen et al. Nano Energy, 2015, 13: 546~553.
-
[47]
M Hirayama, H Ido, K S Kim et al. J. Am. Chem. Soc., 2010, 132(43): 15268~15276.
- [48]
-
[49]
Q Du, X K Fu, S J Liu et al. Polym. Int., 2012, 61(2): 222~227.
-
[50]
V Borgel, E Markevich, D Aurbach et al. J. Power Sources, 2009, 189(1): 331~336.
-
[51]
E Simonetti, G Maresca, G B Appetecchi et al. J. Power Sources, 2016, 331: 426~434.
-
[52]
A Tsurumaki, M A Navarra, S Panero et al. J. Power Sources, 2013, 233: 104~109.
-
[53]
T Q Yong, L Z Zhang, J L Wang et al. J. Power Sources, 2016, 328: 397~404.
-
[54]
S Pandian, S G Raju, K S Hariharan et al. J. Power Sources, 2015, 286: 204~209.
-
[55]
D R Macfarlane, S A Forsyth, J Golding et al. Green Chem., 2002, 4(5): 444~448.
-
[56]
-
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