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受纤毛启发的仿生触觉电子皮肤:结构、制造与应用

Cilia-Inspired Bionic Tactile E-Skin: Structure, Fabrication and Applications.

作者信息

Yu Jiahe, Ai Muxi, Liu Cairong, Bi Hengchang, Wu Xing, Ying Wu Bin, Yu Zhe

机构信息

In Situ Devices Center, School of Integrated Circuits, East China Normal University, Shanghai 200241, China.

School of Electrical Engineering, Korea Advanced Institute of Science and Technology, Daejeon 34141, Republic of Korea.

出版信息

Sensors (Basel). 2024 Dec 26;25(1):76. doi: 10.3390/s25010076.

Abstract

The rapid advancement of tactile electronic skin (E-skin) has highlighted the effectiveness of incorporating bionic, force-sensitive microstructures in order to enhance sensing performance. Among these, cilia-like microstructures with high aspect ratios, whose inspiration is mammalian hair and the lateral line system of fish, have attracted significant attention for their unique ability to enable E-skin to detect weak signals, even in extreme conditions. Herein, this review critically examines recent progress in the development of cilia-inspired bionic tactile E-skin, with a focus on columnar, conical and filiform microstructures, as well as their fabrication strategies, including template-based and template-free methods. The relationship between sensing performance and fabrication approaches is thoroughly analyzed, offering a framework for optimizing sensitivity and resilience. We also explore the applications of these systems across various fields, such as medical diagnostics, motion detection, human-machine interfaces, dexterous robotics, near-field communication, and perceptual decoupling systems. Finally, we provide insights into the pathways toward industrializing cilia-inspired bionic tactile E-skin, aiming to drive innovation and unlock the technology's potential for future applications.

摘要

触觉电子皮肤(电子皮肤)的迅速发展凸显了融入仿生、力敏微结构以提高传感性能的有效性。其中,受哺乳动物毛发和鱼类侧线系统启发而具有高纵横比的纤毛状微结构,因其能使电子皮肤即使在极端条件下也能检测微弱信号的独特能力而备受关注。在此,本综述批判性地审视了受纤毛启发的仿生触觉电子皮肤发展的最新进展,重点关注柱状、锥形和丝状微结构及其制造策略,包括基于模板和无模板方法。深入分析了传感性能与制造方法之间的关系,为优化灵敏度和弹性提供了一个框架。我们还探讨了这些系统在各个领域的应用,如医学诊断、运动检测、人机界面、灵巧机器人、近场通信和感知解耦系统。最后,我们深入探讨了受纤毛启发的仿生触觉电子皮肤产业化的途径,旨在推动创新并释放该技术在未来应用中的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7caf/11722616/d9ac1ea44b58/sensors-25-00076-g001.jpg

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