Demethylation of Fluorine-Free Ethers to Reconcile Li + Transport Kinetics and Oxidation Stability

化学 去甲基化 电解质 动力学 脱质子化 无机化学 化学稳定性 降级(电信) 单体 有机化学 理论(学习稳定性) 化学工程 阴极 化学动力学
作者
Shengkai Cao,Song Yuan,Fu Lun Tan,L Chen,Zhenxiang Xing,Jiaqi Wei,Lei Ye,Huarong Xia,Yuwei Cao,Ning-Yu Huang,H L Zhang,Qiang Zhu,Xian Jun Loh,Xiaodong Chen
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:148 (18): 18827-18838
标识
DOI:10.1021/jacs.6c00214
摘要

Li + transport kinetics and oxidation stability are often mutually constrained in fast-charging and low-temperature electrolyte design. Existing strategies rely heavily on fluorinated solvents, diluents, and additives to form inorganic fluorine-rich interphases that facilitate interfacial Li + desolvation and suppress electrode and electrolyte degradation. However, these approaches often raise environmental and cost concerns while limiting the salt dissociation and Li + conduction in bulk electrolytes. Herein, we report that demethylation of fluorine-free ethers simultaneously reduces steric hindrance and weakens hyperconjugative radical stabilization, thereby enabling fast Li + conduction and desolvation while preserving graphite structural integrity and enhancing oxidation stability. This strategy is the inverse of the widely adopted methylation approach, where methyl substitution reduces reactive α-H sites to achieve weakly solvating electrolytes and enhanced oxidation resistance. As a proof of concept, stepwise demethylation from 2,5-dimethyltetrahydrofuran (2,5-THF) to 2-methyltetrahydrofuran (2-THF) and ultimately to tetrahydrofuran (THF) facilitates the dissociation of lithium bis(fluorosulfonyl)imide (LiFSI) and improves the inherent molecular stability. Moreover, the effective inorganic fluorine-rich interphase formed at both negative and positive electrode surfaces ensures fast Li + desolvation and electrochemical stability. The 1 Ah graphite∥LiNi 0.8 Co 0.1 Mn 0.1 O 2 pouch cell with the formulated electrolyte retains 85.14% capacity at 1C (1000 cycles) under room temperature and 80.31% at 0.2C (200 cycles) under −20 °C. Our demethylation strategy expands molecular design principles of electrolyte solvents, advancing the development of robust lithium-ion batteries capable of operating under extreme conditions.
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