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Highly Stretchable, Elastic, and Sensitive MXene-Based Hydrogel for Flexible Strain and Pressure Sensors

Electronic skin is driving the next generation of cutting-edge wearable electronic products due to its good wearability and high accuracy of information acquisition. However, it remains a challenge to fulfill the requirements on detecting full-range human activities with existing flexible strain sen...

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Autores principales: Lu, Yao, Qu, Xinyu, Zhao, Wen, Ren, Yanfang, Si, Weili, Wang, Wenjun, Wang, Qian, Huang, Wei, Dong, Xiaochen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7376495/
https://www.ncbi.nlm.nih.gov/pubmed/32760912
http://dx.doi.org/10.34133/2020/2038560
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author Lu, Yao
Qu, Xinyu
Zhao, Wen
Ren, Yanfang
Si, Weili
Wang, Wenjun
Wang, Qian
Huang, Wei
Dong, Xiaochen
author_facet Lu, Yao
Qu, Xinyu
Zhao, Wen
Ren, Yanfang
Si, Weili
Wang, Wenjun
Wang, Qian
Huang, Wei
Dong, Xiaochen
author_sort Lu, Yao
collection PubMed
description Electronic skin is driving the next generation of cutting-edge wearable electronic products due to its good wearability and high accuracy of information acquisition. However, it remains a challenge to fulfill the requirements on detecting full-range human activities with existing flexible strain sensors. Herein, highly stretchable, sensitive, and multifunctional flexible strain sensors based on MXene- (Ti(3)C(2)T(x)-) composited poly(vinyl alcohol)/polyvinyl pyrrolidone double-network hydrogels were prepared. The uniformly distributed hydrophilic MXene nanosheets formed a three-dimensional conductive network throughout the hydrogel, endowing the flexible sensor with high sensitivity. The strong interaction between the double-network hydrogel matrix and MXene greatly improved the mechanical properties of the hydrogels. The resulting nanocomposited hydrogels featured great tensile performance (2400%), toughness, and resilience. Particularly, the as-prepared flexible pressure sensor revealed ultrahigh sensitivity (10.75 kPa(−1)) with a wide response range (0-61.5 kPa), fast response (33.5 ms), and low limit of detection (0.87 Pa). Moreover, the hydrogel-based flexible sensors, with high sensitivity and durability, could be employed to monitor full-range human motions and assembled into some aligned devices for subtle pressure detection, providing enormous potential in facial expression and phonation recognition, handwriting verification, healthy diagnosis, and wearable electronics.
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spelling pubmed-73764952020-08-04 Highly Stretchable, Elastic, and Sensitive MXene-Based Hydrogel for Flexible Strain and Pressure Sensors Lu, Yao Qu, Xinyu Zhao, Wen Ren, Yanfang Si, Weili Wang, Wenjun Wang, Qian Huang, Wei Dong, Xiaochen Research (Wash D C) Research Article Electronic skin is driving the next generation of cutting-edge wearable electronic products due to its good wearability and high accuracy of information acquisition. However, it remains a challenge to fulfill the requirements on detecting full-range human activities with existing flexible strain sensors. Herein, highly stretchable, sensitive, and multifunctional flexible strain sensors based on MXene- (Ti(3)C(2)T(x)-) composited poly(vinyl alcohol)/polyvinyl pyrrolidone double-network hydrogels were prepared. The uniformly distributed hydrophilic MXene nanosheets formed a three-dimensional conductive network throughout the hydrogel, endowing the flexible sensor with high sensitivity. The strong interaction between the double-network hydrogel matrix and MXene greatly improved the mechanical properties of the hydrogels. The resulting nanocomposited hydrogels featured great tensile performance (2400%), toughness, and resilience. Particularly, the as-prepared flexible pressure sensor revealed ultrahigh sensitivity (10.75 kPa(−1)) with a wide response range (0-61.5 kPa), fast response (33.5 ms), and low limit of detection (0.87 Pa). Moreover, the hydrogel-based flexible sensors, with high sensitivity and durability, could be employed to monitor full-range human motions and assembled into some aligned devices for subtle pressure detection, providing enormous potential in facial expression and phonation recognition, handwriting verification, healthy diagnosis, and wearable electronics. AAAS 2020-07-14 /pmc/articles/PMC7376495/ /pubmed/32760912 http://dx.doi.org/10.34133/2020/2038560 Text en Copyright © 2020 Yao Lu et al. http://creativecommons.org/licenses/by/4.0/ Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Lu, Yao
Qu, Xinyu
Zhao, Wen
Ren, Yanfang
Si, Weili
Wang, Wenjun
Wang, Qian
Huang, Wei
Dong, Xiaochen
Highly Stretchable, Elastic, and Sensitive MXene-Based Hydrogel for Flexible Strain and Pressure Sensors
title Highly Stretchable, Elastic, and Sensitive MXene-Based Hydrogel for Flexible Strain and Pressure Sensors
title_full Highly Stretchable, Elastic, and Sensitive MXene-Based Hydrogel for Flexible Strain and Pressure Sensors
title_fullStr Highly Stretchable, Elastic, and Sensitive MXene-Based Hydrogel for Flexible Strain and Pressure Sensors
title_full_unstemmed Highly Stretchable, Elastic, and Sensitive MXene-Based Hydrogel for Flexible Strain and Pressure Sensors
title_short Highly Stretchable, Elastic, and Sensitive MXene-Based Hydrogel for Flexible Strain and Pressure Sensors
title_sort highly stretchable, elastic, and sensitive mxene-based hydrogel for flexible strain and pressure sensors
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7376495/
https://www.ncbi.nlm.nih.gov/pubmed/32760912
http://dx.doi.org/10.34133/2020/2038560
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