材料科学
纳米技术
电容感应
电介质
微加工
光刻
离子键合
图层(电子)
电极
光电子学
离子
制作
计算机科学
病理
物理
操作系统
替代医学
医学
量子力学
化学
物理化学
作者
Zhiguang Qiu,Yongbiao Wan,Wohua Zhou,Jingyi Yang,Junlong Yang,Jun Huang,Jianming Zhang,Qingxian Liu,Siya Huang,Ningning Bai,Zhigang Wu,Wei Hong,Hong Wang,Chuan Fei Guo
标识
DOI:10.1002/adfm.201802343
摘要
Abstract Flexible electronic skins (e‐skins) with high sensitivity and broad‐range pressure sensing are highly desired in artificial intelligence, and human–machine interaction. Capacitive‐type e‐skins have a simple configuration, but the change in dimensions of the dielectric layer is often quite limited, although introducing surface microstructures might improve the sensitivity in some extent. Moreover, such surface structures typically require costly microfabrication methods to fabricate. Here, a low‐cost microstructured ionic gel (MIG) with uniform cone‐like surface microstructures for high‐performance capacitive e‐skins is reported. The MIG film is templated from a Calathea zebrine leaf using soft lithography, and sandwiched by two flexible electrodes. The device exhibits a low limit of detection down to 0.1 Pa, a ultrahigh sensitivity of 54.31 kPa −1 in the low pressure regime (<0.5 kPa), and the sensitivity keeps larger than 1 kPa −1 over a broad‐range pressure from 0.1 Pa to 115 kPa. Electric double layers (EDL) form on both the top and bottom interfaces, and the area of EDL of the rough interface increases as the cones are compressed. Such ionic skins with biomimetic gel templated Calathea zebrine leaf allow for sensitive tactile sensing in the applications of human–machine interaction.
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