材料科学
三乙氧基硅烷
压阻效应
织物
复合材料
图层(电子)
数码产品
纳米技术
电气工程
工程类
作者
Xiaohui Guo,Tianxu Zhang,Ziang Wang,Huishan Zhang,Zihao Yan,Xianghui Li,Weiqiang Hong,Anqi Zhang,Zhibin Qian,Xinyi Zhang,Yiming Shu,Jiahao Wang,Liang Hua,Qingqi Hong,Yunong Zhao
标识
DOI:10.1016/j.jcis.2024.01.059
摘要
Recently, wearable electronic products and gadgets have developed quickly with the aim of catching up to or perhaps surpassing the ability of human skin to perceive information from the external world, such as pressure and strain. In this study, by first treating the cellulosic fiber (modal textile) substrate with (3-aminopropyl) triethoxysilane (APTES) and then covering it with conductive nanocomposites, a bionic corpuscle layer is produced. The sandwich structure of tactile corpuscle-inspired bionic (TCB) piezoresistive sensors created with the layer-by-layer (LBL) technology consists of a pressure-sensitive module (a bionic corpuscle), interdigital electrodes (a bionic sensory nerve), and a PU membrane (a bionic epidermis). The synergistic mechanism of hydrogen bond and coupling agent helps to improve the adhesive properties of conductive materials, and thus improve the pressure sensitive properties. The TCB sensor possesses favorable sensitivity (1.0005 kPa-1), a wide linear sensing range (1700 kPa), and a rapid response time (40 ms). The sensor is expected to be applied in a wide range of possible applications including human movement tracking, wearable detection system, and textile electronics.
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