材料科学
温度梯度
电场
阳极
电场梯度
灵敏度(控制系统)
航程(航空)
纳米技术
复合材料
光电子学
化学物理
电极
电子工程
量子力学
物理
工程类
物理化学
化学
作者
Yongyuan Ren,Ziyang Liu,Guoqing Jin,Mengke Yang,Yizhe Shao,Weizheng Li,Yiqing Wu,Lili Liu,Feng Yan
标识
DOI:10.1002/adma.202008486
摘要
Abstract Human fingers exhibit both high sensitivity and wide tactile range. The finger skin structures are designed to display gradient microstructures and compressibility. Inspired by the gradient mechanical Young's modulus distribution, an electric‐field‐induced cationic crosslinker migration strategy is demonstrated to prepare gradient ionogels. Due to the gradient of the crosslinkers, the ionogels exhibit more than four orders of magnitude difference between the anode and the cathode side, enabling gradient ionogel‐based flexible iontronic sensors having high‐sensitivity and broader‐range detection (from 3 × 10 2 to 2.5 × 10 6 Pa) simultaneously. Moreover, owing to the remarkable properties of the gradient ionogels, the flexible iontronic sensors also show good long‐time stability (even after 10 000 cycles loadings) and excellent performance over a wide temperature range (from −108 to 300 °C). The flexible iontronic sensors are further integrated on soft grips, exhibiting remarkable performance under various conditions. These attractive features demonstrate that gradient ionogels will be promising candidates for smart sensor applications in complex and extreme conditions.
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