Peisheng He,Yu Long,Chao Fang,Christine Heera Ahn,Ashley Lee,Chun‐Ming Chen,Jong Ha Park,Monong Wang,Sujoy Kumar Ghosh,Wenying Qiu,Ruiqi Guo,Renxiao Xu,Zhichun Shao,Yande Peng,Likun Zhang,Baoxia Mi,Junwen Zhong,Liwei Lin
出处
期刊:Nano Energy [Elsevier] 日期:2024-06-07卷期号:128: 109858-109858
标识
DOI:10.1016/j.nanoen.2024.109858
摘要
Dehydration has been a key limiting factor for the operation of conductive hydrogels in practical application. Here, we report self-healable ionic skins that can self-regulate their internal moisture level by capturing extenral moistures via hygroscopic ion-coordinated polymer backbones through antipolyelectrolyte effect. Results show the ionic skin can maintain its mechanical and electrical functions over 16 months in the ambient environment with high stretchability (fracture stretch ∼2216 %) and conductivity (23.5 mS/cm). The moisture self-regulating capability is further demonstrated by repeated exposures to harsh environments such as 200°C heating, freezing, and vacuum drying with recovered conductivity and stretchability. Their reversible ionic and hydrogen bonds also enable self-healing feature as a sample with the fully cut-through damage can restore its conductivity after 24 h at 40 % relative humidity. Utilizing the ionic skin as a building block, self-healing flexible piezoelecret sensors have been constructed to monitor physiological signals. Together with a facile transfer-printing process, a self-powered sensing system with a self-healable supercapacitor and humidity sensor has been successfully demonstrated. These results illustrate broad-ranging possibilities for the ionic skins in applications such as energy storage, wearable sensors, and human-machine interfaces.