Conductive Sponge Sensor with Tunnel Crack Based on a Combination of Physical Vapor Deposition and Electroless Deposition

IF 3.4 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Hang Zhao, Pengyu She, Yidan Zhu, Zhiwen Huang, Jianmin Zhu
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Abstract

Tunnel crack-based conductive sponge sensors have drawn much interest due to their broad range and great sensitivity. On intricate 3D sponge structures, conductive coatings created by physical vapor deposition invariably have a nonuniform thickness. The poor stability of the crack structure and the random width of the tunnel cracks formed on the nonuniform conductive coatings significantly limit the repeatability of the sensors. This research suggests a combination of physical vapor deposition and electroless deposition to prepare conductive coatings on sponges with a uniform thickness; this enhances the consistency of the tunnel crack widths that are later constructed. After a thin layer of conductive coating is deposited to the sponge surface using physical vapor deposition, the treated sponge undergoes electroless deposition to enhance the uniformity of the conductive coating, and cyclic compression is used to create the tunnel cracks. The sensor is more stable with the electroless deposition process than the untreated sponge sensor, and there is not much difference between the various sensor samples. This work presents the design of a sensor with excellent stability, low cost, easy preparation, and exemplary performance in human activity signal detection, indicating a wide range of applications.

Abstract Image

基于物理气相沉积和化学沉积相结合的带隧道裂纹的导电海绵传感器
基于隧道裂缝的导电海绵传感器因其测量范围广、灵敏度高而备受关注。在复杂的三维海绵结构上,物理气相沉积产生的导电涂层总是具有不均匀的厚度。裂纹结构稳定性差,且在非均匀导电涂层上形成的隧道裂纹宽度随机,严重限制了传感器的可重复性。本研究建议采用物理气相沉积和化学沉积相结合的方法在海绵表面制备厚度均匀的导电涂层;这提高了以后施工隧道裂缝宽度的一致性。采用物理气相沉积法在海绵表面沉积薄层导电涂层后,对处理后的海绵进行化学沉积以提高导电涂层的均匀性,并利用循环压缩形成隧道裂缝。与未经化学沉积的海绵传感器相比,经化学沉积处理后的传感器稳定性更好,且各传感器样品之间差异不大。这项工作提出了一种传感器的设计,具有优异的稳定性,低成本,易于制备,在人体活动信号检测中具有示范性的性能,表明了广泛的应用范围。
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来源期刊
Advanced Engineering Materials
Advanced Engineering Materials 工程技术-材料科学:综合
CiteScore
5.70
自引率
5.60%
发文量
544
审稿时长
1.7 months
期刊介绍: Advanced Engineering Materials is the membership journal of three leading European Materials Societies - German Materials Society/DGM, - French Materials Society/SF2M, - Swiss Materials Federation/SVMT.
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