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Bioinspired Tactile Sensation Based on Synergistic Microcrack-Bristle Structure Design toward High Mechanical Sensitivity and Direction-Resolving Capability

Natural tactile sensation is complex, which involves not only contact force intensity detection but also the perception of the force direction, the surface texture, and other mechanical parameters. Nevertheless, the vast majority of the developed tactile sensors can only detect the normal force, but...

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Autores principales: Zhang, Yiqun, Liu, Qi, Ren, Wenjuan, Song, Yangyang, Luo, Hua, Han, Yangyang, He, Liang, Wu, Xiaodong, Wang, Zhuqing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10275619/
https://www.ncbi.nlm.nih.gov/pubmed/37333971
http://dx.doi.org/10.34133/research.0172
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author Zhang, Yiqun
Liu, Qi
Ren, Wenjuan
Song, Yangyang
Luo, Hua
Han, Yangyang
He, Liang
Wu, Xiaodong
Wang, Zhuqing
author_facet Zhang, Yiqun
Liu, Qi
Ren, Wenjuan
Song, Yangyang
Luo, Hua
Han, Yangyang
He, Liang
Wu, Xiaodong
Wang, Zhuqing
author_sort Zhang, Yiqun
collection PubMed
description Natural tactile sensation is complex, which involves not only contact force intensity detection but also the perception of the force direction, the surface texture, and other mechanical parameters. Nevertheless, the vast majority of the developed tactile sensors can only detect the normal force, but usually cannot resolve shear force or even distinguish the directions of the force. Here, we present a new paradigm of bioinspired tactile sensors for resolving both the intensity and the directions of mechanical stimulations via synergistic microcrack-bristle structure design and cross-shaped configuration engineering. The microcrack sensing structure gives high mechanical sensitivity to the tactile sensors, and the synergistic bristle structure further amplifies the sensitivity of the sensors. The cross-shaped configuration engineering of the synergistic microcrack-bristle structure further endows the tactile sensors with good capability to detect and distinguish the directions of the applied mechanical forces. The as-fabricated tactile sensors exhibit a high sensitivity (25.76 N(−1)), low detection limit (5.4 mN), desirable stability (over 2,500 cycles), and good capability to resolve both mechanical intensity and directional features. As promising application scenarios, surface texture recognition and biomimetic path explorations are successfully demonstrated with these tactile sensors. This newly proposed tactile sensation strategy and technology have great potential applications in ingenious tactile sensation and construction of various robotic and bionic prostheses with high operational dexterity.
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spelling pubmed-102756192023-06-17 Bioinspired Tactile Sensation Based on Synergistic Microcrack-Bristle Structure Design toward High Mechanical Sensitivity and Direction-Resolving Capability Zhang, Yiqun Liu, Qi Ren, Wenjuan Song, Yangyang Luo, Hua Han, Yangyang He, Liang Wu, Xiaodong Wang, Zhuqing Research (Wash D C) Research Article Natural tactile sensation is complex, which involves not only contact force intensity detection but also the perception of the force direction, the surface texture, and other mechanical parameters. Nevertheless, the vast majority of the developed tactile sensors can only detect the normal force, but usually cannot resolve shear force or even distinguish the directions of the force. Here, we present a new paradigm of bioinspired tactile sensors for resolving both the intensity and the directions of mechanical stimulations via synergistic microcrack-bristle structure design and cross-shaped configuration engineering. The microcrack sensing structure gives high mechanical sensitivity to the tactile sensors, and the synergistic bristle structure further amplifies the sensitivity of the sensors. The cross-shaped configuration engineering of the synergistic microcrack-bristle structure further endows the tactile sensors with good capability to detect and distinguish the directions of the applied mechanical forces. The as-fabricated tactile sensors exhibit a high sensitivity (25.76 N(−1)), low detection limit (5.4 mN), desirable stability (over 2,500 cycles), and good capability to resolve both mechanical intensity and directional features. As promising application scenarios, surface texture recognition and biomimetic path explorations are successfully demonstrated with these tactile sensors. This newly proposed tactile sensation strategy and technology have great potential applications in ingenious tactile sensation and construction of various robotic and bionic prostheses with high operational dexterity. AAAS 2023-06-16 /pmc/articles/PMC10275619/ /pubmed/37333971 http://dx.doi.org/10.34133/research.0172 Text en Copyright © 2023 Yiqun Zhang et al. https://creativecommons.org/licenses/by/4.0/Exclusive licensee Science and Technology Review Publishing House. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution License 4.0 (CC BY 4.0) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Zhang, Yiqun
Liu, Qi
Ren, Wenjuan
Song, Yangyang
Luo, Hua
Han, Yangyang
He, Liang
Wu, Xiaodong
Wang, Zhuqing
Bioinspired Tactile Sensation Based on Synergistic Microcrack-Bristle Structure Design toward High Mechanical Sensitivity and Direction-Resolving Capability
title Bioinspired Tactile Sensation Based on Synergistic Microcrack-Bristle Structure Design toward High Mechanical Sensitivity and Direction-Resolving Capability
title_full Bioinspired Tactile Sensation Based on Synergistic Microcrack-Bristle Structure Design toward High Mechanical Sensitivity and Direction-Resolving Capability
title_fullStr Bioinspired Tactile Sensation Based on Synergistic Microcrack-Bristle Structure Design toward High Mechanical Sensitivity and Direction-Resolving Capability
title_full_unstemmed Bioinspired Tactile Sensation Based on Synergistic Microcrack-Bristle Structure Design toward High Mechanical Sensitivity and Direction-Resolving Capability
title_short Bioinspired Tactile Sensation Based on Synergistic Microcrack-Bristle Structure Design toward High Mechanical Sensitivity and Direction-Resolving Capability
title_sort bioinspired tactile sensation based on synergistic microcrack-bristle structure design toward high mechanical sensitivity and direction-resolving capability
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10275619/
https://www.ncbi.nlm.nih.gov/pubmed/37333971
http://dx.doi.org/10.34133/research.0172
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