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alternative electrolyte host materials for solid-state sodium [24] Zhou J, Zuo P, Liu Y, et al. Ion exchange membranes from poly (2,
batteries[J]. Electrochemistry Communications, 2017, 77: 58-61. 6-dimethyl-1, 4-phenylene oxide) and related applications[J]. Science
[10] Sun B, Mindemark J, Edström K, et al. Polycarbonate-based solid China Chemistry, 2018, 61(9): 1062-1087.
polymer electrolytes for Li-ion batteries[J]. Solid State Ionics, 2014, [25] Shim J, Kim L, Kim H J, et al. All-solid-state lithium metal battery
262: 738-742. with solid polymer electrolytes based on polysiloxane crosslinked by
[11] Xu K. Nonaqueous liquid electrolytes for lithium-based rechargeable modified natural gallic acid[J]. Polymer, 2017, 122: 222-231.
batteries[J]. Chemical Reviews, 2004, 104(10): 4303-4418. [26] Forsyth M, Macfarlane D R, Hill A J. Glass transition and free
[12] Kimura K, Yajima M, Tominaga Y. A highly-concentrated poly volume behaviour of poly(acrylonitrile)/LiCF 3SO 3 polymer-in-salt
(ethylene carbonate)-based electrolyte for all-solid-state Li battery electrolytes compared to poly(ether urethane)/LiClO 4 solid polymer
working at room temperature[J]. Electrochemistry Communications, electrolytes[J]. Electrochimica Acta, 2000, 45(8): 1243-1247.
2016, 66: 46-48. [27] Xu W, Wang L M, Angell C A. “PolyMOB”-lithium salt complexes:
[13] Tao C, Luo Z, Bao J, et al. Effects of macromolecular diol containing From salt-in-polymer to polymer-in-salt electrolytes[J].
different carbamate content on the micro-phase separation of Electrochimica Acta, 2003, 48(14/15/16): 2037-2045.
waterborne polyurethane[J]. Journal of Materials Science, 2018, [28] Chen L, Fan L. Dendrite-free Li metal deposition in all-solid-state
53(11): 8639-8652. lithium sulfur batteries with polymer-in-salt polysiloxane electrolyte[J].
[14] Kwei T K. Phase separation in segmented polyurethanes[J]. Journal Energy Storage Materials, 2018, 15: 37-45.
of Applied Polymer Science, 2010, 27(8): 2891-2899. [29] Vanesa G P, Costa V, Colera M. Waterborne polyurethane
[15] He W, Cui Z, Liu X, et al. Carbonate-linked poly (ethylene oxide) dispersions obtained with polycarbonate of hexanediol intended for
polymer electrolytes towards high performance solid state lithium use as coatings[J]. Progress in Organic Coatings, 2011, 71(2): 136- 146.
batteries[J]. Electrochimica Acta, 2017, 225: 151-159. [30] Long L, Wang S, Xiao M, et al. Polymer electrolytes for lithium
[16] Meabe L, Lago N, Rubatat L, et al. Polycondensation as a versatile polymer batteries[J]. Journal of Materials Chemistry A, 2016, 4(26):
synthetic route to aliphatic polycarbonates for solid polymer 10038-10069.
electrolytes[J]. Electrochimica Acta, 2017, 237: 259-266. [31] Carvalho L M, Guegan P, Cheradame H, et al. Variation of the mesh
[17] Kimura K, Motomatsu J, Tominaga Y. Highly concentrated size of PEO-based networks filled with TFSILi: From an Arrhenius
polycarbonate-based solid polymer electrolytes having extraordinary to WLF type conductivity behavior[J]. European Polymer Journal,
electrochemical stability[J]. Journal of Polymer Science B, Polymer 2000, 36(2): 401-409.
Physics, 2016, 54(23): 2442-2447. [32] Wang S, Jeung S, Min K. The effects of anion structure of lithium
[18] Zhou X, Yin Y, Wang Z, et al. Effect of hot pressing on the ionic salts on the properties of in-situ polymerized thermoplastic
conductivity of the PEO/LiCF 3SO 3 based electrolyte membranes[J]. polyurethane electrolytes[J]. Polymer, 2010, 51(13): 2864-2871.
Solid State Ionics, 2011, 196(1): 18-24. [33] Zhao Y, Huang Z, Chen S, et al. A promising PEO/LAGP hybrid
[19] Kimura K, Yajima M, Tominaga Y. A highly-concentrated poly electrolyte prepared by a simple method for all-solid-state lithium
(ethylene carbonate)-based electrolyte for all-solid-state Li battery batteries[J]. Solid State Ionics, 2016, 295: 65-71.
working at room temperature[J]. Electrochemistry Communications, [34] Yamaguchi T, Miyata F, Nakao S I. Pore-filling type polymer
2016, 66: 46-48. electrolyte membranes for a direct methanol fuel cell[J]. Journal of
[20] Ferry A, Edman L, Forsyth M, et al. NMR and Raman studies of a Membrane Science, 2003, 214(2): 283-292.
novel fast-ion-conducting polymer-in-salt electrolyte based on [35] Kimura K, Yajima M, Tominaga Y. A highly-concentrated poly
LiCF 3SO 3 and PAN[J]. Electrochimica Acta, 2000, 45(8/9): 1237-1242. (ethylene carbonate)-based electrolyte for all-solid-state Li battery
[21] Wu B, Wang L, Li Z, et al. Performance of “polymer-in-salt” working at room temperature[J]. Electrochemistry Communications,
electrolyte PAN-LiTFSI enhanced by graphene oxide filler[J]. 2016, 66: 46-48.
Journal of the Electrochemical Society, 2016, 163(10): A2248- [36] Zhang J, Zhao N, Zhang M, et al. Flexible and ion-conducting
A2252. membrane electrolytes for solid-state lithium batteries: dispersion of
[22] Long L, Wang S, Xiao M, et al. Polymer electrolytes for lithium garnet nanoparticles in insulating polyethylene oxide[J]. Nano
polymer batteries[J]. Journal of Materials Chemistry A, 2016, 4(26): Energy, 2016, 28: 447-454.
10038-10069. [37] Guo Y, Li H, Zhai T. Reviving lithium-metal anodes for next-
[23] MacLeod S K. Moisture determination using Karl Fischer generation high-energy batteries[J/OL]. Advanced Materials, 2017,
titrations[J]. Analytical chemistry, 1991, 63(10): 557A-566A. 29: 1700007.