Wang Yunpeng, Cao Xianfei, Cheng Jie, Yao Bowen, Zhao Yusen, Wu Suli, Ju Benzhi, Zhang Shufen, He Ximin, Niu Wenbin
State Key Laboratory of Fine Chemicals, Dalian University of Technology, West Campus, 2 Linggong Road, Dalian 116024, China.
Department of Materials Science and Engineering, University of California, Los Angeles, California 90095, United States.
ACS Nano. 2021 Feb 23;15(2):3509-3521. doi: 10.1021/acsnano.1c00181. Epub 2021 Feb 2.
Biological skin systems can perceive various external stimuli through ion transduction. Especially, the skin of some advanced organisms such as cephalopods can further promptly change body color by manipulating photonic nanostructures. However, the current skin-inspired soft iontronics lack the rapid full-color switching ability to respond to multiple stimuli including tension, pressure, and temperature. Here, an intelligent chromotropic iontronics with these fascinating functions is developed by constructing a biomimetic ultrastructure with anisotropic electrostatic repulsion. This skin-like chromotropic iontronics can synchronously realize electrical response and optical visualization to mechanical strain and tactile sensation by adjusting the ultrastructure in cooperation with ionic mechanotransduction. Notably, it can perform instantaneous geometric changes to thermal stimuli an anisotropic electrostatic repulsion interior. Such a capability allows bionic skin to transduce temperature or infrared light into ionic signals and color changes in real time. The design of anisotropic photonic nanostructures expands the intelligent application for soft iontronics at higher levels, providing a concise, multifunctional, interactive sensing platform that dynamically displays stimuli information on its body.
生物皮肤系统可以通过离子转导感知各种外部刺激。特别是,一些高级生物体(如头足类动物)的皮肤可以通过操纵光子纳米结构进一步迅速改变身体颜色。然而,目前受皮肤启发的柔性离子电子器件缺乏快速全彩切换能力,无法对包括张力、压力和温度在内的多种刺激做出响应。在此,通过构建具有各向异性静电排斥的仿生超结构,开发出一种具有这些迷人功能的智能变色离子电子器件。这种类似皮肤的变色离子电子器件可以通过与离子机械转导协同调节超结构,同步实现对机械应变和触觉的电响应和光学可视化。值得注意的是,它可以对热刺激(各向异性静电排斥内部)进行瞬时几何变化。这种能力使仿生皮肤能够实时将温度或红外光转换为离子信号和颜色变化。各向异性光子纳米结构的设计扩展了柔性离子电子器件在更高层次上的智能应用,提供了一个简洁、多功能、交互式的传感平台,可在其体表动态显示刺激信息。