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用于仿生离子皮肤的机械变色和导电手性向列纳米结构薄膜。

Mechanochromic and Conductive Chiral Nematic Nanostructured Film for Bioinspired Ionic Skins.

机构信息

School of Chemical Engineering and Technology, Tianjin University, Tianjin 300350, China.

School of Materials Science and Engineering, Tianjin University, Tianjin 300350, China.

出版信息

ACS Nano. 2023 Jul 11;17(13):12829-12841. doi: 10.1021/acsnano.3c04199. Epub 2023 Jun 20.

Abstract

Chameleon skin is naturally adaptive and can sense environmental changes and transform sensing into bioelectrical and optical signals by manipulating ion transduction and photonic nanostructures. The increasing interest in mimicking biological skins has considerably promoted the development of advanced photonic materials with an increasing ionic conductivity. Herein, we report the judicious design and fabrication of a bioinspired mechanochromic chiral nematic nanostructured film with good ionic conductivity by infiltrating fluorine-rich ionic liquids (FILs) into a swollen self-assembled cellulose nanocrystal (CNC) film with helical nanoarchitectures. Notably, the introduction of 2-hydroxyethyl acrylate considerably enhances the compatibility of hydrophobic FILs and hydrophilic CNCs. The resulting FIL-CNC nanostructured films exhibited excellent mechanochromism, good ionic conductivity, and outstanding optical/electrical dual-signal sensing performance when used as a bioinspired ionic skin for real-time monitoring of human motions. Owing to the integration of FILs, the underwater stability of the chiral liquid crystal nanostructures of CNCs was significantly enhanced. Notably, underwater contact/contactless sensing modes and encrypted information transmission have been achieved with the FIL-CNC nanostructured film. This study can offer great insights for the advancement of biomimetic multifunctional artificial skins and emerging interactive devices, which can find important applications in wearable iontronics, human-machine interactions, and intelligent robots.

摘要

变色龙皮肤具有自然适应性,能够感知环境变化,并通过操纵离子传导和光子纳米结构将感应转化为生物电和光学信号。对仿生皮肤的日益关注极大地促进了具有更高离子电导率的先进光子材料的发展。在此,我们通过将富含氟的离子液体(FILs)渗透到具有螺旋纳米结构的溶胀自组装纤维素纳米晶体(CNC)薄膜中,报告了一种明智设计和制造的具有良好离子导电性的仿生机械变色各向异性纳米结构薄膜。值得注意的是,2-羟乙基丙烯酰胺的引入极大地提高了疏水性 FILs 和亲水性 CNCs 的相容性。所得 FIL-CNC 纳米结构薄膜表现出优异的机械变色性、良好的离子导电性和出色的光学/电双信号传感性能,可用作仿生离子皮肤,实时监测人体运动。由于 FILs 的集成,CNC 的手性液晶纳米结构的水下稳定性得到了显著提高。值得注意的是,已经实现了 FIL-CNC 纳米结构薄膜的水下接触/非接触式传感模式和加密信息传输。这项研究为仿生多功能人工皮肤和新兴交互设备的发展提供了重要的见解,它们在可穿戴离子电子学、人机交互和智能机器人等领域有着重要的应用。

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