电解质
化学物理
动力学
化学
相间
电池(电)
离子键合
分析化学(期刊)
离子
热扩散率
电极
化学工程
物理化学
热力学
物理
色谱法
有机化学
量子力学
生物
遗传学
工程类
功率(物理)
作者
Xiaofei Yu,Stefany Angarita-Gomez,Yaobin Xu,Peiyuan Gao,Jun-Gang Wang,Xin Zhang,Hao Jia,Wu Xu,Xiaolin Li,Yingge Du,Zhijie Xu,Janet Ho,Kang Xu,Perla B. Balbuena,Chongmin Wang,Zihua Zhu
标识
DOI:10.48550/arxiv.2308.04701
摘要
Here, using unique in-situ liquid secondary ion mass spectroscopy on isotope-labelled solid-electrolyte-interphase (SEI), assisted by cryogenic transmission electron microscopy and constrained ab initio molecular dynamics simulation, for the first time we answer the question regarding Li+ transport mechanism across SEI, and quantitatively determine the Li+-mobility therein. We unequivocally unveil that Li+ transport in SEI follows a mechanism of successive displacement, rather than "direct-hopping". We further reveal, in accordance with spatial-dependence of SEI structure across the thickness, the apparent Li+ self-diffusivity varies from 6.7*10-19 m2/s to 1.0*10-20 m2/s, setting a quantitative gauging of ionic transport behavior of SEI layer against the underlining electrode as well as the rate limiting step of battery operation. This direct study on Li+ kinetics in SEI fills part of the decade-long knowledge gap about the most important component in advanced batteries and provides more precise guidelines to the tailoring of interphasial chemistries for future battery chemistries.
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