溶剂化
电解质
碳酸乙烯酯
化学物理
范德瓦尔斯力
分子
材料科学
色散(光学)
碳酸盐
电离
伦敦分散部队
离子
溶剂化壳
诱导效应
物理化学
无机化学
光谱学
隐溶剂化
化学
氢
氧气
电池(电)
计算化学
氢键
碳酸二甲酯
共振(粒子物理)
作者
Xingyu Chen,Min Niu,Youqi Zhang,Yanyan Zhang,Liwei Dong,Yuhui Zhu,Yao Zhao,Qingjiang Liu,Yan Meng,Bin Song,Chunhui Yang,Lin Mei,LiBao Chen,Changsong Dai,Fuyi Wang,Sen Xin,Jia‐Yan Liang
摘要
ABSTRACT Weakly‐solvated electrolytes (WSEs) with rapid Li + desolvation are crucial for the stable operation of lithium‐ion batteries at subzero temperatures. Due to the weak Li + ‐dipole interaction, van der Waals forces mediated by dipole–dipole (d–d) interactions could influence electrolyte solvation structure and desolvation kinetics. By replacing ethylene carbonate (EC) with difluoroethylene carbonate (DFEC) or fluoroethylene carbonate (FEC) in a conventional carbonate electrolyte, we investigated the role of d–d interaction, particularly inductive and dispersion forces, in regulating the solvation structure and (electro)chemical properties of a fluorocarbonate‐based WSE. DFEC exhibits inductive forces similar to those of FEC, yet exerts much stronger dispersion forces on linear carbonate molecules due to its greater molecular polarizability. Consequently, electrons redistribute toward the carbonyl oxygen atom of linear carbonates, and hydrogen atoms shift toward DFEC, as is verified by 17 O nuclear magnetic resonance spectroscopy and liquid‐phase time‐of‐flight secondary ion mass spectrometry. Much enhanced Li + ‐carbonate coordination further results in a high ionization degree yet sluggish desolvation kinetics of DFEC‐based WSE. In contrast, FEC‐based WSEs restore balanced weakly‐solvated behavior and lead to much improved battery performance at −20°C and −40°C. This study provides new insights into electrolyte chemistry and establishes general design principles for electrolytes capable of working under extreme conditions.
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