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Stretchable Strain Sensor for Human Motion Monitoring Based on an Intertwined-Coil Configuration

Wearable electronics, such as sensors, actuators, and supercapacitors, have attracted broad interest owing to their promising applications. Nevertheless, practical problems involving their sensitivity and stretchability remain as challenges. In this work, efforts were devoted to fabricating a highly...

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Autores principales: Pan, Wei, Xia, Wei, Jiang, Feng-Shuo, Wang, Xiao-Xiong, Zhang, Zhi-Guang, Li, Xia-Gui, Li, Peng, Jiang, Yong-Chao, Long, Yun-Ze, Yu, Gui-Feng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7600075/
https://www.ncbi.nlm.nih.gov/pubmed/33036403
http://dx.doi.org/10.3390/nano10101980
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author Pan, Wei
Xia, Wei
Jiang, Feng-Shuo
Wang, Xiao-Xiong
Zhang, Zhi-Guang
Li, Xia-Gui
Li, Peng
Jiang, Yong-Chao
Long, Yun-Ze
Yu, Gui-Feng
author_facet Pan, Wei
Xia, Wei
Jiang, Feng-Shuo
Wang, Xiao-Xiong
Zhang, Zhi-Guang
Li, Xia-Gui
Li, Peng
Jiang, Yong-Chao
Long, Yun-Ze
Yu, Gui-Feng
author_sort Pan, Wei
collection PubMed
description Wearable electronics, such as sensors, actuators, and supercapacitors, have attracted broad interest owing to their promising applications. Nevertheless, practical problems involving their sensitivity and stretchability remain as challenges. In this work, efforts were devoted to fabricating a highly stretchable and sensitive strain sensor based on dip-coating of graphene onto an electrospun thermoplastic polyurethane (TPU) nanofibrous membrane, followed by spinning of the TPU/graphene nanomembrane into an intertwined-coil configuration. Owing to the intertwined-coil configuration and the synergy of the two structures (nanoscale fiber gap and microscale twisting of the fiber gap), the conductive strain sensor showed a stretchability of 1100%. The self-inter-locking of the sensor prevents the coils from uncoiling. Thanks to the intertwined-coil configuration, most of the fibers were wrapped into the coils in the configuration, thus avoiding the falling off of graphene. This special configuration also endowed our strain sensor with an ability of recovery under a strain of 400%, which is higher than the stretching limit of knees and elbows in human motion. The strain sensor detected not only subtle movements (such as perceiving a pulse and identifying spoken words), but also large movements (such as recognizing the motion of fingers, wrists, knees, etc.), showing promising application potential to perform as flexible strain sensors.
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spelling pubmed-76000752020-11-01 Stretchable Strain Sensor for Human Motion Monitoring Based on an Intertwined-Coil Configuration Pan, Wei Xia, Wei Jiang, Feng-Shuo Wang, Xiao-Xiong Zhang, Zhi-Guang Li, Xia-Gui Li, Peng Jiang, Yong-Chao Long, Yun-Ze Yu, Gui-Feng Nanomaterials (Basel) Article Wearable electronics, such as sensors, actuators, and supercapacitors, have attracted broad interest owing to their promising applications. Nevertheless, practical problems involving their sensitivity and stretchability remain as challenges. In this work, efforts were devoted to fabricating a highly stretchable and sensitive strain sensor based on dip-coating of graphene onto an electrospun thermoplastic polyurethane (TPU) nanofibrous membrane, followed by spinning of the TPU/graphene nanomembrane into an intertwined-coil configuration. Owing to the intertwined-coil configuration and the synergy of the two structures (nanoscale fiber gap and microscale twisting of the fiber gap), the conductive strain sensor showed a stretchability of 1100%. The self-inter-locking of the sensor prevents the coils from uncoiling. Thanks to the intertwined-coil configuration, most of the fibers were wrapped into the coils in the configuration, thus avoiding the falling off of graphene. This special configuration also endowed our strain sensor with an ability of recovery under a strain of 400%, which is higher than the stretching limit of knees and elbows in human motion. The strain sensor detected not only subtle movements (such as perceiving a pulse and identifying spoken words), but also large movements (such as recognizing the motion of fingers, wrists, knees, etc.), showing promising application potential to perform as flexible strain sensors. MDPI 2020-10-07 /pmc/articles/PMC7600075/ /pubmed/33036403 http://dx.doi.org/10.3390/nano10101980 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Pan, Wei
Xia, Wei
Jiang, Feng-Shuo
Wang, Xiao-Xiong
Zhang, Zhi-Guang
Li, Xia-Gui
Li, Peng
Jiang, Yong-Chao
Long, Yun-Ze
Yu, Gui-Feng
Stretchable Strain Sensor for Human Motion Monitoring Based on an Intertwined-Coil Configuration
title Stretchable Strain Sensor for Human Motion Monitoring Based on an Intertwined-Coil Configuration
title_full Stretchable Strain Sensor for Human Motion Monitoring Based on an Intertwined-Coil Configuration
title_fullStr Stretchable Strain Sensor for Human Motion Monitoring Based on an Intertwined-Coil Configuration
title_full_unstemmed Stretchable Strain Sensor for Human Motion Monitoring Based on an Intertwined-Coil Configuration
title_short Stretchable Strain Sensor for Human Motion Monitoring Based on an Intertwined-Coil Configuration
title_sort stretchable strain sensor for human motion monitoring based on an intertwined-coil configuration
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7600075/
https://www.ncbi.nlm.nih.gov/pubmed/33036403
http://dx.doi.org/10.3390/nano10101980
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