电解质
相间
锂(药物)
化学工程
溶剂化
聚合物
聚合
材料科学
降级(电信)
碳酸二甲酯
金属锂
阴极
分解
电池(电)
金属
化学
无机化学
电化学
作者
Min Wang,Mengjie Li,Junru Wu,Yuefeng Meng,Lili Lin,Yadong Wang,Hao Du,Xinran Geng,Zhiqiang Fu,Cuiping Han,Baohua Li
摘要
ABSTRACT High‐voltage lithium metal batteries suffer from severe interfacial degradation and electrolyte decomposition, limiting cycling stability and practical application. In conventional LiPF 6 ‐based electrolytes containing fluoroethylene carbonate (FEC), LiPF 6 decomposition generates Lewis‐acid species that trigger FEC defluorination and HF formation, causing progressive interphase degradation. Here we report a multifunctional gel polymer electrolyte (MGPE) that integrates solvation regulation with polymer‐network confinement and interrupts the PF 5 –FEC degradation pathway via strong PF 6 − binding. The fluorinated aromatic additive 1,1,2,2‐tetrafluoroethoxybenzene modulates the Li + solvation structure and promotes preferential formation of a stable cathode‐electrolyte interphase, enhancing oxidative stability up to 5.0 V. Meanwhile, in situ polymerization of 3,5‐bis(trifluoromethyl)styrene constructs a fluorinated aromatic network with strong affinity toward PF 6 − , suppressing Lewis‑acidic PF 5 formation. The synergistic interplay between solvation regulation, PF 5 suppression, and fluorinated‐network confinement steers interphase evolution toward dense LiF‐rich layers on both electrodes, enabling Li||LiCoO 2 cells to retain 82.6% capacity after 400 cycles at 4.5 V and 90.3% after 200 cycles at a cathode loading of ∼11 mg cm −2 . Furthermore, 1.3 Ah pouch cells (N/P = 1.1) show 80.7% capacity retention after 30 cycles under practical conditions. This work provides an electrolyte‐engineering strategy to suppress PF 5 ‐induced degradation and stabilize interphase evolution, enabling safer high‐energy lithium metal batteries.
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