电解质
材料科学
电化学
溶剂化
四氢呋喃
溶剂
化学工程
电池(电)
离子
电导率
容量损失
极地的
无机化学
储能
纳米技术
电极
有机溶剂
理论(学习稳定性)
作者
Yun Zhang,Zhenhui Liu,Jianwei Xiong,Xinyi Shao,Zixia Lin,Xiangmin Feng,Jianyu Shi,Zhenming Xu,Mingbo Zheng,Laifa Shen,Yongyao Xia
标识
DOI:10.1002/adfm.202529170
摘要
ABSTRACT Driven by expanding applications of lithium‐ion batteries, demand grows for enhanced performance under extreme conditions such as fast charging, low temperature, and high voltage. Low‐cost weak solvents show great potential for advanced electrolytes suited for fast‐charging and low‐temperature applications, but their poor electrochemical stability limits use with high‐voltage cathodes. Designing electrolytes that balance interfacial stability, ion transport kinetics, low‐temperature adaptation, and cost remains challenging. Here, we propose a ternary‐anion‐driven (PF 6 − , TFSI − , DFOB − ) minimized‐solvent‐coordination strategy using representative weak solvent tetrahydrofuran (THF) as the main component. This enables a stable ternary‐anion‐dominated solvation structure at a conventional 1.2 m concentration. Consequently, the designed electrolyte achieves reliable operation up to 4.3–4.4 V in NCM811//Gr full cells, even with oxidation‐sensitive THF comprising 97% of the solvent. This electrolyte simultaneously delivers exceptional fast‐charging performance (76.8% capacity retention at 6 C over 2000 cycles) and outstanding low‐temperature capability (95.1% retention after 100 cycles at −40°C) in NCM811//Gr cells. Moreover, it also enables stable cycling for 500 cycles in practical NCM811//Gr pouch cells and shows highly competitive performance in NCM811//Si/C cells.
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