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用于智能手势和材料认知系统的生物启发式SA-FA仿生双受体电子皮肤,通过静态-动态相互作用增强

Bio-Inspired SA-FA Bionic Dual Receptor Electronic Skin for Intelligent Gesture and Material Cognition Systems Enhanced by Static-Dynamic Mutual Interaction.

作者信息

Li Hao, Niu Hongsen, Kan Hao, Kim Eun-Seong, Kim Nam-Young, Li Yang

机构信息

School of Integrated Circuits, Shandong University, Jinan, 250101, China.

Shandong Provincial Key Laboratory of Ubiquitous Intelligent Computing, School of Information Science and Engineering, University of Jinan, Jinan, 250022, China.

出版信息

Adv Sci (Weinh). 2025 Aug 13:e09740. doi: 10.1002/advs.202509740.

Abstract

Traditional electronic skins (e-skins) face significant challenges in system integration and practical usability demonstrations, limiting their ability to meet the development demands of robot intellectualization under future artificial intelligence (AI) frameworks. Here, a bionic dual receptor (BDR) e-skin motivated by AI-based hardware-software coordination is proposed, which consists of electrospinning fiber triboelectric unit inspired by fast-adapting receptors and micropyramid ionic hydrogel iontronic unit inspired by slow-adapting receptors. Benefiting from the iontronic effect and micropyramid structure, the iontronic unit yields impressive features: a linear sensitivity of 172 kPa (30 kPa), a fast response/recovery time of 11.2 ms. Based on this innovation, the BDR e-skin is integrated into the glove, and a dual-channel signal-motivated intelligent glove cognitive system for sign language gesture identification and robot interaction is developed, laying the foundation for subsequent usability demonstrations. Further, the BDR e-skin is deeply integrated with intelligent software algorithms and high-speed hardware circuits to construct an intelligent autonomous material cognition system. This system enables the robot finger controlled by the intelligent glove to accurately identify multidimensional properties (average accuracy: 99.3%) of smooth surface films-such as electronegativity, softness/hardness, and material species-with a single touch, showing a tactile cognition level comparable to that of humans.

摘要

传统电子皮肤(e-skins)在系统集成和实际可用性演示方面面临重大挑战,限制了它们在未来人工智能(AI)框架下满足机器人智能化发展需求的能力。在此,提出了一种受基于人工智能的硬件-软件协同驱动的仿生双受体(BDR)电子皮肤,它由受快速适应受体启发的静电纺丝纤维摩擦电单元和受缓慢适应受体启发的微金字塔离子水凝胶离子电子单元组成。得益于离子电子效应和微金字塔结构,离子电子单元具有令人印象深刻的特性:线性灵敏度为172 kPa(30 kPa),快速响应/恢复时间为11.2 ms。基于这一创新,BDR电子皮肤被集成到手套中,并开发了一种用于手语手势识别和机器人交互的双通道信号驱动智能手套认知系统,为后续的可用性演示奠定了基础。此外,BDR电子皮肤与智能软件算法和高速硬件电路深度集成,构建了一个智能自主材料认知系统。该系统使由智能手套控制的机器人手指能够通过单次触摸准确识别光滑表面薄膜的多维特性(平均准确率:99.3%),如电负性、软硬度和材料种类,展现出与人类相当的触觉认知水平。

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