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Nanostructured liquid-crystalline Li-ion conductors with high oxidation resistance: molecular design strategy towards safe and high-voltage-operation Li-ion batteries

机译:具有高抗氧性的纳米结构液晶锂离子导体:安全和高压操作锂离子电池的分子设计策略

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摘要

Nanostructured, uncharged liquid-crystalline (LC) electrolyte molecules having bicyclohexyl and cyclic carbonate moieties have been developed for application in Li-ion batteries as quasi-solid electrolytes, which suppress leakage and combustion. Towards the development of safe and high performance Li-ion batteries, we have designed Li-ion conductive LC materials with high oxidation resistance using density functional theory (DFT) calculation. The DFT calculation suggests that a mesogen with a bicyclohexyl moiety is suitable for the high-oxidation-resistance LC electrolytes compared to a mesogen containing phenylene moieties. A tri(oxyethylene) chain introduced between the cyclic carbonate and the bicyclohexyl moiety in the core part tunes the viscosity and the miscibility with Li salts. The designed Li-ion conductive LC molecules exhibit smectic LC phases over a wide temperature range, and they are miscible with added lithium bis(trifluoromethanesulfonyl)imide (LiTFSI) salt up to 5 : 5 in molar ratio in their smectic phases. The resulting LC mixtures with LiTFSI show oxidation resistance above 4.0 V vs. Li/Li+ in cyclic voltammetry measurements. The enhanced oxidation resistance improves the performance of Li half-cells containing LC electrolytes.
机译:纳米结构的无充电的液晶(LC)电解质分子具有双环己基和环碳酸酯部分,用于在锂离子电池中应用,如准固体电解质,抑制漏漏和燃烧。为了开发安全和高性能的锂离子电池,我们设计了利用密度函数理论(DFT)计算具有高抗氧化性的锂离子导电LC材料。 DFT计算表明,与含含脱苯基部分相比,具有双环己基部分的脱糖剂适用于高氧化抗性LC电解质。在核心部分中的环状碳酸盐和双环己基部分之间引入的三(氧乙烯)链调节粘度和Li盐的混溶性。所设计的锂离子导电LC分子在宽温度范围内表现出近晶LC相,它们与其近晶相中的摩尔比中加入的锂双(三氟甲磺酰基)酰亚胺(LITFSI)盐含有5:5的混溶性。由LITFSI的得到的LC混合物显示出循环伏安测量中4.0V与Li / Li +以上的氧化抗性。增强的抗氧化性抗性改善了含有LC电解质的Li半细胞的性能。

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  • 来源
    《Chemical science》 |2020年第39期|共7页
  • 作者单位

    Univ Tokyo Sch Engn Dept Chem &

    Biotechnol Bunkyo Ku Tokyo 1138656 Japan;

    Univ Tokyo Sch Engn Dept Chem &

    Biotechnol Bunkyo Ku Tokyo 1138656 Japan;

    Natl Inst Adv Sci &

    Technol AIST Tsukuba Ibaraki 3058568 Japan;

    Univ Tokyo Sch Engn Dept Chem &

    Biotechnol Bunkyo Ku Tokyo 1138656 Japan;

    Univ Tokyo Sch Engn Dept Chem &

    Biotechnol Bunkyo Ku Tokyo 1138656 Japan;

    Univ Tokyo Sch Engn Dept Chem &

    Biotechnol Bunkyo Ku Tokyo 1138656 Japan;

    Univ Tokyo Sch Engn Dept Chem &

    Biotechnol Bunkyo Ku Tokyo 1138656 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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