Saccharinate-Based Ionic Liquids and Lithium Battery Electrolytes

IF 4.7 4区 材料科学 Q2 ELECTROCHEMISTRY
Mukhtiar Ahmed, Ashok Kushwaha, Andrei Filippov, Patrik Johansson, Faiz Ullah Shah
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Abstract

Fluorine-free ionic liquids (ILs) and electrolytes based on ether-functionalized pyrrolidinium or imidazolinium cations coupled with a “greener”, non-basic, and hydrolytically stable saccharinate (Sac) anion, are herein presented with their thermal, transport and electrochemical properties. The thermal stability, glass transition temperature, and electrochemical stability of the imidazolinium based ILs surpasses the pyrrolidinium IL, while the latter offer better (ion) transport properties. Ether-functionalization of the IL cation improves the transport properties with negligible effects on the thermal and electrochemical stabilities. The Li+ conducting electrolytes – created by adding 10 mol % of lithium saccharinate (LiSac) to the neat (BMMIm)(Sac) and (C201MMIm)(Sac) ILs show an as low initial overpotential as ±0.05 V and outstanding Li stripping/plating performance over 100 hours at 60 °C for the latter, but a very large polarization interfacial resistance, 4730 Ω cm2, impeding the kinetics of stripping/plating, even at these elevated temperatures for the former. Hence the rather modest modification has an enormous impact in practice.

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基于糖精的离子液体和锂电池电解质
本文介绍了无氟离子液体(ILs)和基于醚功能化吡啶或咪唑离子与“绿色”、非碱性、水解稳定的糖化(Sac)阴离子偶联的电解质,它们具有热、传输和电化学性质。咪唑基IL的热稳定性、玻璃化转变温度和电化学稳定性优于吡咯吡啶基IL,而吡咯吡啶基IL具有更好的(离子)输运性能。IL阳离子的醚功能化改善了输运性质,对热稳定性和电化学稳定性的影响可以忽略不计。在纯(BMMIm)(Sac)和(C201MMIm)(Sac) ILs中加入10 mol %的糖酸锂(LiSac)制备的Li+导电电解质,在60℃下,后者的初始过电位低至±0.05 V,且在100小时内具有出色的Li剥离/镀性能,但前者的极化界面电阻非常大,为4730 Ω cm2,即使在这些高温下也阻碍了剥离/镀动力学。因此,这种相当温和的修改在实践中产生了巨大的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.60
自引率
5.30%
发文量
223
期刊介绍: Electrochemical energy storage devices play a transformative role in our societies. They have allowed the emergence of portable electronics devices, have triggered the resurgence of electric transportation and constitute key components in smart power grids. Batteries & Supercaps publishes international high-impact experimental and theoretical research on the fundamentals and applications of electrochemical energy storage. We support the scientific community to advance energy efficiency and sustainability.
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