电解质
电池(电)
分子动力学
锂(药物)
离子键合
电化学
分解
材料科学
化学物理
锂离子电池
降级(电信)
离子液体
离子
纳米技术
化学工程
计算机科学
化学
电极
计算化学
热力学
物理
物理化学
有机化学
催化作用
医学
电信
功率(物理)
工程类
内分泌学
作者
Youssef Mabrouk,Nehzat Safaei,Felix Hanke,Johan M. Carlsson,Diddo Diddens,Andreas Heuer
标识
DOI:10.1038/s41598-024-60063-0
摘要
Abstract The development of reliable computational methods for novel battery materials has become essential due to the recently intensified research efforts on more sustainable energy storage materials. Here, we use a recently developed framework allowing to consistently incorporate quantum-mechanical activation barriers to classical molecular dynamics simulations to study the reductive solvent decomposition and formation of the solid electrolyte interphase for a graphite/carbonate electrolyte interface. We focus on deriving condensed-phase effective rates based on the elementary gas-phase reduction and decomposition energy barriers. After a short initial transient limited by the elementary barriers, we observe that the effective rate shows a transition to a kinetically slow regime influenced by the changing coordination environment and the ionic fluxes between the bulk electrolyte and the interface. We also discuss the impact of the decomposition on the ionic mobility. Thus, our work shows how elementary first-principles properties can be mechanistically leveraged to provide fundamental insights into electrochemical stability of battery electrolytes.
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