材料科学
电解质
点击化学
离子电导率
聚合物
甲基丙烯酸酯
离子键合
共聚物
甲基丙烯酸缩水甘油酯
自愈水凝胶
共价键
化学工程
高分子化学
锂(药物)
拓扑(电路)
电导率
纳米技术
分子
离子液体
原位
表面改性
作者
Lei Shi,Hantao Xu,Jingyuan Yu,Ruixiang Xu,Li Yang,Wei Deng,Zixin Xiao,Shidong Li,Lin Xu
摘要
ABSTRACT Polymer electrolytes (PEs), valued for their superior safety and processability in lithium metal batteries (LMBs), often face trade‐offs between ionic conductivity and mechanical strength, along with interfacial instability. Herein, we report a molecular programming strategy that encodes desired functionalities directly into the PEs network. This strategy is executed by programming urethane groups as functional units into the network via an in situ programmed click reaction, wherein trace water and Lewis acid salts in the electrolyte mediate the click crosslinking of glycidyl methacrylate with 2‐isocyanatoethyl methacrylate. In this programming, each urethane group concurrently serves as a covalent crosslinker for mechanical integrity and a dynamic unit for self‐healing, thereby constructing a topological terpolymer framework. Additionally, these units participate in reshaping the ion transport environment, guiding the formation of a mechanochemically stable interphase layer. Consequently, this programmed electrolyte exhibits a surface Young's modulus as high as 3.7 GPa, and excellent ionic conductivity. The 1 Ah pouch cell retains 96.39% capacity after 500 cycles. This work establishes a programming paradigm for PEs, advancing the application of high‐performance PEs in LMBs.
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