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深度学习助力的主动仿生多功能水凝胶电子皮肤。

Deep-Learning Enabled Active Biomimetic Multifunctional Hydrogel Electronic Skin.

机构信息

Ministry of Education Key Laboratory of Micro and Nano Systems for Aerospace, School of Mechanical Engineering, Northwestern Polytechnical University, Xi'an 710072, China.

Research & Development Institute of Northwestern Polytechnical University in Shenzhen, Sanhang Science & Technology Building, No.45th, Gaoxin South ninth Road, Nanshan District, Shenzhen City 518063, China.

出版信息

ACS Nano. 2023 Aug 22;17(16):16160-16173. doi: 10.1021/acsnano.3c05253. Epub 2023 Jul 31.

Abstract

There is huge demand for recreating human skin with the functions of epidermis and dermis for interactions with the physical world. Herein, a biomimetic, ultrasensitive, and multifunctional hydrogel-based electronic skin (BHES) was proposed. Its epidermis function was mimicked using poly(ethylene terephthalate) with nanoscale wrinkles, enabling accurate identification of materials through the capabilities to gain/lose electrons during contact electrification. Internal mechanoreceptor was mimicked by interdigital silver electrodes with stick-slip sensing capabilities to identify textures/roughness. The dermis function was mimicked by patterned microcone hydrogel, achieving pressure sensors with high sensitivity (17.32 mV/Pa), large pressure range (20-5000 Pa), low detection limit, and fast response (10 ms)/recovery time (17 ms). Assisted by deep learning, this BHES achieved high accuracy and minimized interference in identifying materials (95.00% for 10 materials) and textures (97.20% for four roughness cases). By integrating signal acquisition/processing circuits, a wearable drone control system was demonstrated with three-degree-of-freedom movement and enormous potentials for soft robots, self-powered human-machine interaction interfaces of digital twins.

摘要

对于能够模拟表皮和真皮功能以与物理世界相互作用的人类皮肤的复制,存在着巨大的需求。在此,提出了一种仿生的、超灵敏的、多功能的水凝胶基电子皮肤(BHES)。它的表皮功能是通过具有纳米级皱纹的聚对苯二甲酸乙二醇酯来模拟的,通过在接触带电过程中获得/失去电子的能力,可以准确识别材料。通过具有粘滑传感能力的叉指状银电极模拟内部机械感受器,以识别纹理/粗糙度。真皮功能通过图案化微锥水凝胶来模拟,实现了具有高灵敏度(17.32 mV/Pa)、大压力范围(20-5000 Pa)、低检测限和快速响应(10 ms)/恢复时间(17 ms)的压力传感器。借助深度学习,这种 BHES 在识别材料(10 种材料的准确率为 95.00%)和纹理(四种粗糙度情况下的准确率为 97.20%)方面达到了高精度,并且最小化了干扰。通过集成信号采集/处理电路,演示了一个可穿戴的无人机控制系统,具有三个自由度的运动,在软机器人、数字孪生的自供电人机交互界面方面具有巨大的潜力。

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