McBrayer Josefine D, Apblett Christopher A, Harrison Katharine L, Fenton Kyle R, Minteer Shelley D
Power Sources Technology Group, Sandia National Laboratory, Albuquerque, NM, United States of America.
Department of Chemical Engineering, University of Utah, 50 S Central Campus Dr, Salt Lake City, UT 84112, United States of America.
Nanotechnology. 2021 Sep 27;32(50). doi: 10.1088/1361-6528/ac17fe.
A stable solid electrolyte interphase (SEI) layer is key to high performing lithium ion and lithium metal batteries for metrics such as calendar and cycle life. The SEI must be mechanically robust to withstand large volumetric changes in anode materials such as lithium and silicon, so understanding the mechanical properties and behavior of the SEI is essential for the rational design of artificial SEI and anode form factors. The mechanical properties and mechanical failure of the SEI are challenging to study, because the SEI is thin at only ~10-200 nm thick and is air sensitive. Furthermore, the SEI changes as a function of electrode material, electrolyte and additives, temperature, potential, and formation protocols. A variety ofandtechniques have been used to study the mechanics of the SEI on a variety of lithium ion battery anode candidates; however, there has not been a succinct review of the findings thus far. Because of the difficulty of isolating the true SEI and its mechanical properties, there have been a limited number of studies that can fully de-convolute the SEI from the anode it forms on. A review of past research will be helpful for culminating current knowledge and helping to inspire new innovations to better quantify and understand the mechanical behavior of the SEI. This review will summarize the different experimental and theoretical techniques used to study the mechanics of SEI on common lithium battery anodes and their strengths and weaknesses.
对于诸如日历寿命和循环寿命等指标而言,稳定的固体电解质界面(SEI)层是高性能锂离子电池和锂金属电池的关键。SEI必须具有机械稳定性,以承受锂和硅等负极材料中的巨大体积变化,因此了解SEI的机械性能和行为对于合理设计人工SEI和负极外形至关重要。SEI的机械性能和机械失效很难研究,因为SEI很薄,仅约10-200纳米厚,并且对空气敏感。此外,SEI会随着电极材料、电解质和添加剂、温度、电位以及形成协议而变化。人们已经使用了各种技术来研究各种锂离子电池负极候选材料上SEI的力学性能;然而,到目前为止还没有对这些研究结果进行简洁的综述。由于难以分离出真正的SEI及其机械性能,能够从其形成的负极中完全解卷积出SEI的研究数量有限。回顾过去的研究将有助于总结当前的知识,并有助于激发新的创新,以更好地量化和理解SEI的机械行为。本综述将总结用于研究常见锂电池负极上SEI力学性能的不同实验和理论技术及其优缺点。