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Rapid-Response, Low Detection Limit, and High-Sensitivity Capacitive Flexible Tactile Sensor Based on Three-Dimensional Porous Dielectric Layer for Wearable Electronic Skin

机译:基于三维多孔介电层的可穿戴电子皮肤的快速响应,低检测极限和高灵敏度电容触觉传感器

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摘要

Three-dimensional (3D) porous conductive composites explored in highly sensitive tactile sensors have attracted extensive close attention in recent years owing to their peculiar porous structure and unique physical properties in terms of excellent mechanical flexibility, high relative dielectric permittivity, and good elastic property. Herein, we report an practical, efficient, and macroscopic dip-coating process to manufacture rapid-response, low detection limit, high-sensitivity, and highly sensitive capacitive flexible tactile sensors. The fabrication process, tactile perception mechanism, and sensing performance of the developed devices are comparatively investigated. The homogeneous 3D hybrid network constructed by graphene nanoplatelets/carboxyl-functionalized multiwalled carbon nanotubes/silicone rubber composites anchored on polyurethane sponge skeletons exhibits a significantly improved dielectric property, resulting in a high-performance capacitive flexible tactile sensor with a fast response time (~45 ms), an extremely low-pressure detection limit of ~3 Pa, excellent sensitivity (~0.062 kPa~(–1)), and excellent durability and stability over 2000 cycles. Importantly, the flexible devices can be used as the wearable electronic skin and successfully mounted on human skin or a soft-bodied robot to achieve the capability of physiological stimuli monitoring, micropressure monitoring, soft grabbing, etc. Our rapid-response, low detection limit, and high-sensitivity capacitive flexible tactile sensor with a novel 3D porous dielectric layer could be a prospective candidate for the wearable applications in real-time and high-accuracy portable healthcare monitoring devices, advanced human–machine interfaces, and intelligent robot perception systems.
机译:在高度敏感的触觉传感器中探索的三维(3D)多孔导电复合材料在近年来,由于其特殊的多孔结构,并且在优异的机械柔韧性,高相对介电常数和良好的弹性性能方面,其独特的物理性能引起了广泛的关注。在此,我们报告了一种实用,高效和宏观的浸涂过程,以制造快速响应,低检测限,高灵敏度和高敏感的电容性柔性触觉传感器。相对调查,制造工艺,触觉感知机理和感测性能和感测性能。由石墨烯纳米孔/羧基官能化的多壁碳纳米管/硅氧烷橡胶复合材料构成的均匀3D混合网络锚定在聚氨酯海绵骨架上表现出显着改善的介电性能,导致高性能电容性柔性触觉传感器,具有快速响应时间(〜45 MS),极低压力检测极限〜3 PA,良好敏感性(〜0.062kPa〜(-1)),优异的耐用性和稳定性超过2000次循环。重要的是,柔性器件可用作可穿戴电子皮肤,并成功地安装在人体皮肤上或软体机器人上,以实现生理刺激监测,微加压监测,软抓取等的能力。我们的快速反应,低检测极限而且具有新型3D多孔介电层的高灵敏度电容性柔性触觉传感器可以是实时和高精度便携式医疗监控设备,先进的人机界面和智能机器人感知系统中的可穿戴应用的前瞻性候选者。

著录项

  • 来源
    《ACS applied materials & interfaces》 |2019年第43期|共10页
  • 作者单位

    Key Laboratory of Intelligent Computing and Signal Processing of Ministry of Education School of Electronics and Information Engineering Anhui University;

    Key Laboratory of Intelligent Computing and Signal Processing of Ministry of Education School of Electronics and Information Engineering Anhui University;

    Key Laboratory of Intelligent Computing and Signal Processing of Ministry of Education School of Electronics and Information Engineering Anhui University;

    Key Laboratory of Intelligent Computing and Signal Processing of Ministry of Education School of Electronics and Information Engineering Anhui University;

    Key Laboratory of Intelligent Computing and Signal Processing of Ministry of Education School of Electronics and Information Engineering Anhui University;

    Key Laboratory of Intelligent Computing and Signal Processing of Ministry of Education School of Electronics and Information Engineering Anhui University;

    School of Optical and Electronic Information Huazhong University of Science and Technology;

    Department of Metallurgical and Materials Engineering The University of Alabama;

    Key Laboratory of Microelectronic Devices Integrated Technology Institute of Microelectronics Chinese Academy of Sciences;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    electronic skin; capacitive flexible tactile sensor; rapid response; low detection limit; high sensitivity; porous dielectric layer; conductive sponge; synergy effect;

    机译:电子皮肤;电容性柔性触觉传感器;快速响应;低检测限;高灵敏度;多孔介电层;导电海绵;协同效果;

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