电解质
材料科学
化学工程
电化学
离子电导率
聚合物
共聚物
膜
超级电容器
解聚
丙烯酸酯
电化学储能
电池(电)
电导率
高分子化学
乙醚
导电聚合物
电容
储能
有机化学
化学
快离子导体
离子键合
三羟甲基丙烷
化学改性
作者
Qian Huang,Jeet Sharma,Yingna Ding,Kenny Lee,Craig J. Hawker,Dipan Kundu,Cyrille Boyer
摘要
ABSTRACT Growing demand for electrochemical energy storage has intensified concerns over battery end‐of‐life disposal, driving an urgent need for recyclable electrolyte materials. Here, we report a photo‐curable, chemically recyclable solid polymer electrolyte platform built on a bio‐derived difunctional cross‐linker, poly(ethylene glycol) bis(lipoate) (PEG‐LP 2 ), prepared from naturally occurring α‐lipoic acid. Visible‐light‐driven copolymerization of PEG‐LP 2 with poly(ethylene glycol) methyl ether acrylate in the presence of an ionic liquid (BMITFSI, 45 wt%) yields flexible, ionically conductive membranes (1.30 mS cm −1 at room temperature). The dynamic disulfide cross‐linked network imparts both solid‐like mechanical integrity and chemical recyclability. When assembled into symmetric supercapacitors, the optimized SPE‐65 formulation retains ∼70% of its initial specific capacitance after 6000 galvanostatic cycles at 100 mA g −1 . Complete catalyst‐assisted depolymerization is achieved using 1,8‐diazabicyclo[5.4.0]undec‐7‐ene (DBU) under mild, ambient conditions, and subsequent repolymerization regenerates ionically conductive membranes retaining ∼70% of the original conductivity (0.86 mS cm −1 ). Together, the bio‐derived lipoate cross‐linker, catalytically assisted depolymerization, and regenerated electrochemical performance constitute a sustainable and recyclable SPE manufacture platform for next‐generation supercapacitor applications.
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