电解质
阳离子聚合
材料科学
聚合
聚合物
离子电导率
单体
化学工程
离子键合
锂(药物)
相间
动力学
高分子化学
热分解
无机化学
电导率
热稳定性
电化学
沉淀聚合
自由基聚合
分解
离子液体
聚合物电解质
原位聚合
电极
金属
作者
Zhong Xu,Weili Deng,Weiqing Yang
标识
DOI:10.1021/acsami.6c06006
摘要
Conventional in situ thermal radical polymerization of electrolytes requires elevated temperatures and typically leads to complete monomer and Li-salt consumption, which severely limits ionic transport and results in an unstable solid-electrolyte interphase (SEI) for lithium metal batteries (LMBs). Here, we propose an ambient cationic activation-radical synergy strategy (CIP), in which PF 6 – derived Lewis acidic species selectively activate vinylene carbonate (VC) and trigger polymerization at room temperature through a cationic-induced pathway fundamentally distinct from the traditional thermal-initiated process (TIP). Combined theoretical calculations and in situ spectroscopic analyses indicate that PF 6 – decomposition precedes polymer growth and lowers the activation barrier, enabling controlled polymerization while preserving a fraction of electrochemically active monomers. The resulting gel polymer electrolyte (GPE) exhibits accelerated ionic transport kinetics with an elevated transference number of 0.78 and an ionic conductivity of 6.49 × 10 –3 S cm –1 . When applied in LMBs, this electrolyte promotes the formation of a dense, inorganic-rich, and dynamically reinforced SEI, enabling stable lithium plating/stripping over 2000 h, sustained cycling over 1200 cycles at 0.5 C, and excellent rate capability up to 10 C, demonstrating its promise for high-performance LMBs.
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