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用于改善具有过充保护的锂离子电池NCM523∥石墨高温存储性能的电解质添加剂

Electrolyte Additives for Improving the High-Temperature Storage Performance of Li-Ion Battery NCM523∥Graphite with Overcharge Protection.

作者信息

Gu Qin, Wang Ming, Liu Yang, Deng Yunlong, Wang Liping, Gao Jian

机构信息

New Energy Materials Laboratory, Sichuan Changhong Electric Co., Ltd., Chengdu 610041, China.

School of Materials and Energy, University of Electronic Science and Technology of China, Chengdu 611731, China.

出版信息

ACS Appl Mater Interfaces. 2022 Jan 26;14(3):4759-4766. doi: 10.1021/acsami.1c22304. Epub 2022 Jan 11.

Abstract

The overcharge safety performance of lithium-ion batteries has been the major bottleneck in the widespread deployment of this promising technology. Pushing the limitations further may jeopardize cell safety when it is performed at high-temperature storage. On the basis of the lacking systematic research on overcharge protection electrolyte additives with high-temperature storage capacity, we explore the promotion effect of overcharge additives on electrolyte decomposition at 60 °C. Specifically, the addition of tris(trimethylsily) phosphite (TMSP) and lithium difluoro(oxalato)borate (LiDFOB) in the electrolyte can not only form the robust cathode electrolyte interface/solid electrolyte interphase (CEI/SEI) but also improve the thermal stability of the electrolyte. Therefore, we promote the electrolyte system to realize the 18,650 LIB storage at 60 °C for 50 days by optimizing the formula in the electrolyte containing biphenyl (BP) and cyclohexylbenzene (CHB) overcharge protection additives, and the capacity retention rate can reach more than 90% with overcharge safety. Further, the optimized electrolyte system has also been implemented to commercial 18,650 LIBs and demonstrates the widening of the route to the widespread application of the electrolyte under extreme conditions.

摘要

锂离子电池的过充安全性能一直是这项有前景的技术广泛应用的主要瓶颈。在高温存储条件下进一步突破这些限制可能会危及电池安全。基于对具有高温存储能力的过充保护电解质添加剂缺乏系统研究,我们探究了过充添加剂对60℃下电解质分解的促进作用。具体而言,在电解质中添加亚磷酸三(三甲基硅基)酯(TMSP)和二氟草酸硼酸锂(LiDFOB)不仅可以形成坚固的阴极电解质界面/固体电解质界面(CEI/SEI),还能提高电解质的热稳定性。因此,通过优化含联苯(BP)和环己基苯(CHB)过充保护添加剂的电解质配方,我们推动电解质体系实现了18650锂离子电池在60℃下存储50天,且过充安全情况下容量保持率可达90%以上。此外,优化后的电解质体系已应用于商用18650锂离子电池,并证明了在极端条件下拓宽电解质广泛应用途径的可能性。

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