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用于先进锂二次电池的混合离子凝胶电解质:进展与挑战

Hybrid Ionogel Electrolytes for Advanced Lithium Secondary Batteries: Developments and Challenges.

作者信息

Hu Yunhuan, Yu Le, Meng Tao, Zhou Sisi, Sui Xin, Hu Xianluo

机构信息

State Key Laboratory of Materials Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, 430074, Wuhan, P. R. China.

Wuhan Institute of Marine Electric Propulsion, 430064, Wuhan, P. R. China.

出版信息

Chem Asian J. 2022 Dec 1;17(23):e202200794. doi: 10.1002/asia.202200794. Epub 2022 Oct 26.

Abstract

Incidents in the use of lithium-ion batteries are usually caused by the malfunction of flammable organic liquid electrolytes with poor thermal stability. Therefore, the development of noncombustible electrolytes is regarded as one of the most effective means to prevent the safety hazards of lithium-ion batteries. Ionic liquids have attracted much interest recently, mainly due to their high ionic conductivity, low volatility, and incombustibility. The application of ionic liquids to the preparation of quasi-solid-state gel electrolytes combines the advantages of ionic liquids and avoids the risks of organic liquid electrolytes. Therefore, the solid-state ionogels have been considered as a promising alternative electrolyte system, especially for the much-desired energy storage devices with higher energy density and flexibility. This review focuses on the recent progress of ionogel electrolytes for lithium-ion batteries. The preparation strategies for ionogel electrolytes based on different frameworks, namely inorganic matrix, organic matrix, and organic-inorganic hybrid matrix, are discussed. Subsequently, efforts to improve the properties of the ionogel electrolytes, including the ionic conductivity, mechanical properties, and lithium-ion transfer number, are summarized. Besides, the applications of ionogel electrolytes in high-voltage lithium-ion batteries and lithium metal batteries as well as the batteries under extreme environments are outlined. Finally, the perspectives on studying and improving the performances of ionogel electrolytes for advanced lithium-ion batteries are provided.

摘要

锂离子电池使用过程中的事故通常是由热稳定性差的易燃有机液体电解质故障引起的。因此,开发不可燃电解质被视为预防锂离子电池安全隐患的最有效手段之一。离子液体最近引起了广泛关注,主要是因为它们具有高离子电导率、低挥发性和不可燃性。将离子液体应用于制备准固态凝胶电解质,结合了离子液体的优点,避免了有机液体电解质的风险。因此,固态离子凝胶被认为是一种很有前途的替代电解质体系,特别是对于人们非常渴望的具有更高能量密度和柔韧性的储能装置。本文综述了锂离子电池离子凝胶电解质的最新研究进展。讨论了基于不同框架(即无机基质、有机基质和有机-无机杂化基质)的离子凝胶电解质的制备策略。随后,总结了为改善离子凝胶电解质性能(包括离子电导率、机械性能和锂离子迁移数)所做的努力。此外,还概述了离子凝胶电解质在高压锂离子电池、锂金属电池以及极端环境下电池中的应用。最后,对研究和改进先进锂离子电池离子凝胶电解质的性能提出了展望。

相似文献

2
Ionogel-Based Membranes for Safe Lithium/Sodium Batteries.用于安全锂/钠电池的离子凝胶基膜
Adv Mater. 2022 Dec;34(52):e2200945. doi: 10.1002/adma.202200945. Epub 2022 Aug 26.

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