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Bioinspired Young's Modulus‐Hierarchical E‐Skin with Decoupling Multimodality and Neuromorphic Encoding Outputs to Biosystems

As key interfaces for the disabled, optimal prosthetics should elicit natural sensations of skin touch or proprioception, by unambiguously delivering the multimodal signals acquired by the prosthetics to the nervous system, which still remains challenging. Here, a bioinspired temperature‐pressure el...

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Autores principales: Duan, Shengshun, Wei, Xiao, Zhao, Fangzhi, Yang, Huiying, Wang, Ye, Chen, Pinzhen, Hong, Jianlong, Xiang, Shengxin, Luo, Minzhou, Shi, Qiongfeng, Shen, Guozhen, Wu, Jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10625104/
https://www.ncbi.nlm.nih.gov/pubmed/37679093
http://dx.doi.org/10.1002/advs.202304121
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author Duan, Shengshun
Wei, Xiao
Zhao, Fangzhi
Yang, Huiying
Wang, Ye
Chen, Pinzhen
Hong, Jianlong
Xiang, Shengxin
Luo, Minzhou
Shi, Qiongfeng
Shen, Guozhen
Wu, Jun
author_facet Duan, Shengshun
Wei, Xiao
Zhao, Fangzhi
Yang, Huiying
Wang, Ye
Chen, Pinzhen
Hong, Jianlong
Xiang, Shengxin
Luo, Minzhou
Shi, Qiongfeng
Shen, Guozhen
Wu, Jun
author_sort Duan, Shengshun
collection PubMed
description As key interfaces for the disabled, optimal prosthetics should elicit natural sensations of skin touch or proprioception, by unambiguously delivering the multimodal signals acquired by the prosthetics to the nervous system, which still remains challenging. Here, a bioinspired temperature‐pressure electronic skin with decoupling capability (TPD e‐skin), inspired by the high‐low modulus hierarchical structure of human skin, is developed to restore such functionality. Due to the bionic dual‐state amplifying microstructure and contact resistance modulation, the MXene TPD e‐skin exhibits high sensitivity over a wide pressure range and excellent temperature insensitivity (91.2% reduction). Additionally, the high‐low modulus structural configuration enables the pressure insensitivity of the thermistor. Furthermore, a neural model is proposed to neutrally code the temperature‐pressure signals into three types of nerve‐acceptable frequency signals, corresponding to thermoreceptors, slow‐adapting receptors, and fast‐adapting receptors. Four operational states in the time domain are also distinguished after the neural coding in the frequency domain. Besides, a brain‐like machine learning‐based fusion process for frequency signals is also constructed to analyze the frequency pattern and achieve object recognition with a high accuracy of 98.7%. The TPD neural system offers promising potential to enable advanced prosthetic devices with the capability of multimodality‐decoupling sensing and deep neural integration.
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spelling pubmed-106251042023-11-05 Bioinspired Young's Modulus‐Hierarchical E‐Skin with Decoupling Multimodality and Neuromorphic Encoding Outputs to Biosystems Duan, Shengshun Wei, Xiao Zhao, Fangzhi Yang, Huiying Wang, Ye Chen, Pinzhen Hong, Jianlong Xiang, Shengxin Luo, Minzhou Shi, Qiongfeng Shen, Guozhen Wu, Jun Adv Sci (Weinh) Research Articles As key interfaces for the disabled, optimal prosthetics should elicit natural sensations of skin touch or proprioception, by unambiguously delivering the multimodal signals acquired by the prosthetics to the nervous system, which still remains challenging. Here, a bioinspired temperature‐pressure electronic skin with decoupling capability (TPD e‐skin), inspired by the high‐low modulus hierarchical structure of human skin, is developed to restore such functionality. Due to the bionic dual‐state amplifying microstructure and contact resistance modulation, the MXene TPD e‐skin exhibits high sensitivity over a wide pressure range and excellent temperature insensitivity (91.2% reduction). Additionally, the high‐low modulus structural configuration enables the pressure insensitivity of the thermistor. Furthermore, a neural model is proposed to neutrally code the temperature‐pressure signals into three types of nerve‐acceptable frequency signals, corresponding to thermoreceptors, slow‐adapting receptors, and fast‐adapting receptors. Four operational states in the time domain are also distinguished after the neural coding in the frequency domain. Besides, a brain‐like machine learning‐based fusion process for frequency signals is also constructed to analyze the frequency pattern and achieve object recognition with a high accuracy of 98.7%. The TPD neural system offers promising potential to enable advanced prosthetic devices with the capability of multimodality‐decoupling sensing and deep neural integration. John Wiley and Sons Inc. 2023-09-07 /pmc/articles/PMC10625104/ /pubmed/37679093 http://dx.doi.org/10.1002/advs.202304121 Text en © 2023 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Duan, Shengshun
Wei, Xiao
Zhao, Fangzhi
Yang, Huiying
Wang, Ye
Chen, Pinzhen
Hong, Jianlong
Xiang, Shengxin
Luo, Minzhou
Shi, Qiongfeng
Shen, Guozhen
Wu, Jun
Bioinspired Young's Modulus‐Hierarchical E‐Skin with Decoupling Multimodality and Neuromorphic Encoding Outputs to Biosystems
title Bioinspired Young's Modulus‐Hierarchical E‐Skin with Decoupling Multimodality and Neuromorphic Encoding Outputs to Biosystems
title_full Bioinspired Young's Modulus‐Hierarchical E‐Skin with Decoupling Multimodality and Neuromorphic Encoding Outputs to Biosystems
title_fullStr Bioinspired Young's Modulus‐Hierarchical E‐Skin with Decoupling Multimodality and Neuromorphic Encoding Outputs to Biosystems
title_full_unstemmed Bioinspired Young's Modulus‐Hierarchical E‐Skin with Decoupling Multimodality and Neuromorphic Encoding Outputs to Biosystems
title_short Bioinspired Young's Modulus‐Hierarchical E‐Skin with Decoupling Multimodality and Neuromorphic Encoding Outputs to Biosystems
title_sort bioinspired young's modulus‐hierarchical e‐skin with decoupling multimodality and neuromorphic encoding outputs to biosystems
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10625104/
https://www.ncbi.nlm.nih.gov/pubmed/37679093
http://dx.doi.org/10.1002/advs.202304121
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