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◆ ACS Applied Polymer Materials2026-02-09· Materials science

An Autonomous Self-Healing Ionic Elastomer with High Toughness Tailored for Robust Capacitive Sensors

Xuebin Wang, Yichen Zhong, Jie Yang, Yongxian Xu, Tong Liu, Fuyao Sun, Linlin Wang, Zhifeng Wang, Jianhua Xu, Jiajun Fu

原始摘要(英文原文)· Original abstract
Stretchable ionic conductors have emerged as promising materials for next-generation flexible energy and sensing devices. However, simultaneously achieving mechanical robustness, autonomous self-healing, and high ionic conductivity within one material system remains challenging. Here, we developed a tough, self-healing ionic conductive elastomer (TSHICE) based on a bioinspired, functionally partitioned design. Mimicking the hierarchical architecture of human skin, TSHICE integrates a polyether soft phase that forms continuous Li + transport pathways with a dynamic hard phase composed of cooperative strong and weak hydrogen bonds. The dynamic hard domains act as reversible cross-linking sites, imparting mechanical integrity and efficient self-repair while maintaining reliable ionic conduction. As a result, TSHICE achieves a high fracture energy (89.8 kJ m –2 ), an ionic conductivity of 3.27 × 10 –3 S m –1, high tensile strength (11.8 MPa), remarkable toughness (136.5 MJ m –3 ), rapid room-temperature self-healing, and good optical transparency. Capacitive sensors fabricated from TSHICE exhibit fast response (≈23 ms) and multisignal recognition capabilities, demonstrating strong potential for advanced sensing applications. This bioinspired design strategy offers insight into the development of ionic elastomers with integrated mechanical robustness, self-healing capability, and efficient ionic transport enabled by continuous ion-conducting pathways.
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