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