材料科学
离子液体
离子电导率
丙烯酸酯
聚合物
化学工程
电解质
超级电容器
电导率
聚合
高分子化学
复合材料
电极
有机化学
电化学
共聚物
物理化学
化学
催化作用
工程类
作者
Daniele Melodia,Abhirup Bhadra,Kenneth Lee,Rhiannon P. Kuchel,Dipan Kundu,Nathaniel Corrigan,Cyrille Boyer
出处
期刊:Small
[Wiley]
日期:2023-02-03
卷期号:19 (50)
被引量:25
标识
DOI:10.1002/smll.202206639
摘要
Abstract Solid polymer electrolytes (SPEs) offer several advantages compared to their liquid counterparts, and much research has focused on developing SPEs with enhanced mechanical properties while maintaining high ionic conductivities. The recently developed polymerization‐induced microphase separation (PIMS) technique offers a straightforward pathway to fabricate bicontinuous nanostructured materials in which the mechanical properties and conductivity can be independently tuned. In this work SPEs with tunable mechanical properties and conductivities are prepared via digital light processing 3D printing, exploiting the PIMS process to achieve nanostructured ion‐conducting materials for energy storage applications. A rigid crosslinked poly(isobornyl acrylate‐ stat ‐trimethylpropane triacrylate) scaffold provided materials with room temperature shear modulus above 400 MPa, while soft poly(oligoethylene glycol methyl ether acrylate) domains containing the ionic liquid 1‐butyl‐3‐methylimidazolium bis‐(trifluoromethyl sulfonyl)imide endowed the material with ionic conductivity up to 1.2 mS cm −1 at 30 °C. These features make the 3D‐printed SPE very competitive for applications in all solid energy storage devices, including supercapacitors.
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