Designing High-Temperature Stable Electrolytes: Insights from the Degradation Mechanisms of Boron-Containing Additives

化学 降级(电信) 锂(药物) 电解质 化学工程 电池(电) 热稳定性 合理设计 无机化学 纳米技术 有机化学 材料科学 物理化学 热力学 内分泌学 功率(物理) 电极 工程类 物理 电信 医学 计算机科学
作者
Zhangyating Xie,Zhiyong Xia,Jie Cai,Ruoyu Guo,Yili Chen,Wentao Liang,Ziyuan Tang,Qinqin Cai,Zekai Ma,Jiarong He,Ronghua Zeng,Boris Markovsky,Doron Aurbach,Lidan Xing,Weishan Li
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:147 (27): 23931-23945 被引量:16
标识
DOI:10.1021/jacs.5c06741
摘要

With the increasing energy density and expanding applications of lithium-ion batteries, the demand for enhanced high-temperature performance has grown significantly. Although previous studies have attempted to improve the high-temperature stability through electrolyte modifications, the underlying failure mechanisms and the rational design principles for suitable electrolyte systems remain insufficiently understood. This study focuses on electrolytes containing boron-based additives, particularly lithium tetraborate, which exhibits excellent rate capability and impressive low-temperature performance but suffers from instability at elevated temperatures. Our investigation reveals that high-temperature battery failure is not solely attributed to aluminum current collector corrosion and the thermal instability of the bulk electrolyte but also to interphasial instability. These include detrimental side reactions catalyzed by Ni-rich cathodes and compromised electron-blocking capabilities of interphasial films. Based on these findings, we propose a new design guideline for high-temperature-stable electrolyte solutions, which is validated by the successful application of tris(2,2,2-trifluoroethyl) borate and 1,3,5-trimethyl-1,3,5-tris(3,3,3-trifluoropropyl) cyclotrisiloxane as functional additives. These additives effectively address the identified degradation pathways, resulting in significantly enhanced high-temperature performance. This comprehensive framework provides valuable insights into the rational design of advanced electrolyte systems for lithium-ion batteries that can be operated across a broad temperature range.
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