电解质
溶剂化
材料科学
锂(药物)
动力学
金属锂
化学工程
离子电导率
金属
动能
离子键合
工作(物理)
化学物理
电导率
活化能
电池(电)
纳米技术
储能
化学稳定性
电极
物理化学
电阻率和电导率
作者
Chenxuan Xu,Tao Su,Yan Lai,Zhimeng Hao,Xiujuan Zhuang,Jianmin Ma
摘要
ABSTRACT Fast charging of high‐energy lithium metal batteries is fundamentally limited by sluggish Li + desolvation kinetics and the instability of electrode–electrolyte interfaces under high current densities. Here, an anion‐centric weakly solvating electrolyte is developed via an anion–solvent–anion mutual‐exclusion strategy to simultaneously accelerate Li + transport and stabilize interfacial chemistry in Li||NCM811 batteries. This cooperative exclusion effect significantly lowers the Li + desolvation activation energy to ∼34 kJ mol −1 while maintaining a favorable ion‐pair distribution with minimal aggregation, enabling a high ionic conductivity of ∼2.8 mS cm −1 . Benefiting from the optimized solvation environment, inorganic‐rich and mechanically robust SEI/CEI layers are formed in situ, facilitating fast interfacial charge transfer and uniform lithium deposition. Consequently, Li||NCM811 cells exhibit outstanding high‐rate performance, delivering high specific capacities at 5 C and 10 C with prolonged cycling stability, demonstrating significant fast‐charging potential. This work elucidates a solvation‐structure‐driven kinetic mechanism critical for fast charging and provides a general electrolyte design paradigm beyond conventional weakly solvating strategies.
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