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使用多功能阴极电解液缓冲层提高石榴石基全固态锂电池的高温循环稳定性。

Enhanced High-Temperature Cycling Stability of Garnet-Based All Solid-State Lithium Battery Using a Multi-Functional Catholyte Buffer Layer.

作者信息

Zhao Leqi, Zhong Yijun, Cao Chencheng, Tang Tony, Shao Zongping

机构信息

WA School of Mines: Minerals, Energy and Chemical Engineering, Curtin University, Perth, WA, 6102, Australia.

出版信息

Nanomicro Lett. 2024 Feb 19;16(1):124. doi: 10.1007/s40820-024-01358-9.

Abstract

The pursuit of safer and high-performance lithium-ion batteries (LIBs) has triggered extensive research activities on solid-state batteries, while challenges related to the unstable electrode-electrolyte interface hinder their practical implementation. Polymer has been used extensively to improve the cathode-electrolyte interface in garnet-based all-solid-state LIBs (ASSLBs), while it introduces new concerns about thermal stability. In this study, we propose the incorporation of a multi-functional flame-retardant triphenyl phosphate additive into poly(ethylene oxide), acting as a thin buffer layer between LiNiCoMnO (NCM811) cathode and garnet electrolyte. Through electrochemical stability tests, cycling performance evaluations, interfacial thermal stability analysis and flammability tests, improved thermal stability (capacity retention of 98.5% after 100 cycles at 60 °C, and 89.6% after 50 cycles at 80 °C) and safety characteristics (safe and stable cycling up to 100 °C) are demonstrated. Based on various materials characterizations, the mechanism for the improved thermal stability of the interface is proposed. The results highlight the potential of multi-functional flame-retardant additives to address the challenges associated with the electrode-electrolyte interface in ASSLBs at high temperature. Efficient thermal modification in ASSLBs operating at elevated temperatures is also essential for enabling large-scale energy storage with safety being the primary concern.

摘要

对更安全、高性能锂离子电池(LIB)的追求引发了对固态电池的广泛研究活动,然而,与不稳定的电极 - 电解质界面相关的挑战阻碍了它们的实际应用。聚合物已被广泛用于改善基于石榴石的全固态LIB(ASSLB)中的阴极 - 电解质界面,但其引入了关于热稳定性的新问题。在本研究中,我们提出将多功能阻燃剂磷酸三苯酯添加剂掺入聚环氧乙烷中,作为锂镍钴锰氧化物(NCM811)阴极与石榴石电解质之间的薄缓冲层。通过电化学稳定性测试、循环性能评估、界面热稳定性分析和可燃性测试,证明了热稳定性(在60°C下100次循环后容量保持率为98.5%,在80°C下50次循环后为89.6%)和安全特性(在高达100°C的温度下安全稳定循环)得到改善。基于各种材料表征,提出了界面热稳定性提高的机理。结果突出了多功能阻燃添加剂在解决ASSLB高温下电极 - 电解质界面相关挑战方面的潜力。在以安全为首要关注点的大规模储能应用中,ASSLB在高温下的高效热改性也至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d113/10876510/6f0f41ac1976/40820_2024_1358_Fig1_HTML.jpg

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