材料科学
锂(药物)
动力学
纳米纤维
化学工程
阳离子聚合
电解质
聚丙烯腈
复合数
咪唑
离子键合
共价键
静电纺丝
离子液体
聚合物
共价有机骨架
纳米技术
网络共价键合
离子
金属
离子电导率
自组装
金属锂
溶剂化
作者
Kexiang Wang,Mingqing Yu,Xiangming Cui,Weiqiang Kong,Ju Duan,Linchu Xu,Wenbo Lyu,Zhouzhou Yao,Wei Yan,Jianan Wang,Wei Lyu,Yaozu Liao
标识
DOI:10.1002/adfm.202511658
摘要
Abstract Developing a novel gel polymer electrolyte (GPE) constitutes an effective strategy for addressing retarded Li + transport and enabling ultrafast‐charging quasi‐solid‐state lithium metal batteries (QSLMBs). Herein, a novel imidazolium cationic covalent organic framework (ICOF) incorporated into a nanofibrous skeleton GPE (ICOFNS‐GPE) is reported, which accelerates desolvation‐dissociation kinetics for rapid and uniform Li + transport. In ICOF, imine/triazole bonds facilitate Li + desolvation via lithiophilic coordination, whereas imidazolium cations promote anion anchoring to enhance dissociation, collectively optimizing desolvation‐dissociation kinetics and stabilizing the Li anode. Furthermore, incorporating ICOF into polyacrylonitrile nanofiber networks forms hierarchical ion channels, enabling fast Li + transport. As a result, ICOFNS‐GPE exhibits both a high σ of 1.95 mS cm −1 and a high of 0.74, which are attributed to the accelerated ionic migration kinetics. The assembled Li || NCM811 cells with ICOFNS‐GPE can reach 133.0 mAh g −1 at 5 C (capacity retention rate of 83.2% after 300 cycles). ICOFNS‐GPE enables QSLMBs to achieve 73% capacity within 10 min and ensures stable operation under mechanical stresses (folding, pricking, cutting). This work presents a novel approach to engineering functional composite GPEs for ultrafast‐charging QSLMBs.
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