纳米技术
软质材料
离子电导率
离子键合
耐久性
离子液体
弹性体
导电体
共晶体系
化学
超分子化学
材料设计
钥匙(锁)
电池(电)
电导率
材料科学
储能
离子
作者
Burebi Yiming,Zheng Jia,Costantino Creton
出处
期刊:Chemical Reviews
[American Chemical Society]
日期:2025-10-29
卷期号:125 (21): 10457-10491
被引量:16
标识
DOI:10.1021/acs.chemrev.5c00257
摘要
Stretchable ionic conductors (SICs) have been the focus of recent research due to their potential in soft electronics, bioelectronics, and flexible energy devices. A key challenge in this field is achieving a good balance between ionic conductivity and mechanical robustness, particularly in solvent-free systems where durability and long-term stability are critical. Recent progress in elastomer-based SICs has demonstrated innovative strategies to enhance performance, including the use of dynamic cross-linking, supramolecular interactions, and phase-separated networks. Materials such as poly(ionic liquid)-based elastomers (PILs), polymerizable deep eutectic solvents (PDESs), and dual-network ionogels have emerged as promising candidates, offering high stretchability, tunable conductivity, and improved mechanical strength. This review provides an overview of the design strategies and key properties of SICs, focusing on the interplay between mechanical performance and ion-transport. By analyzing recent advances in material architecture, cross-linking chemistry, and ion transport mechanisms, we highlight promising approaches for optimizing SICs for the next generation of stretchable devices.
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