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Thermoresponsive Lignin-Reinforced Poly(Ionic Liquid) Hydrogel Wireless Strain Sensor

To meet critical requirements on flexible electronic devices, multifunctionalized flexible sensors with excellent electromechanical performance and temperature perception are required. Herein, lignin-reinforced thermoresponsive poly(ionic liquid) hydrogel is prepared through an ultrasound-assisted s...

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Autores principales: Qu, Xinyu, Zhao, Ye, Chen, Zi'ang, Wang, Siying, Ren, Yanfang, Wang, Qian, Shao, Jinjun, Wang, Wenjun, Dong, Xiaochen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8674648/
https://www.ncbi.nlm.nih.gov/pubmed/34957404
http://dx.doi.org/10.34133/2021/9845482
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author Qu, Xinyu
Zhao, Ye
Chen, Zi'ang
Wang, Siying
Ren, Yanfang
Wang, Qian
Shao, Jinjun
Wang, Wenjun
Dong, Xiaochen
author_facet Qu, Xinyu
Zhao, Ye
Chen, Zi'ang
Wang, Siying
Ren, Yanfang
Wang, Qian
Shao, Jinjun
Wang, Wenjun
Dong, Xiaochen
author_sort Qu, Xinyu
collection PubMed
description To meet critical requirements on flexible electronic devices, multifunctionalized flexible sensors with excellent electromechanical performance and temperature perception are required. Herein, lignin-reinforced thermoresponsive poly(ionic liquid) hydrogel is prepared through an ultrasound-assisted synthesized method. Benefitting from the electrostatic interaction between lignin and ionic liquid, the hydrogel displays high stretchability (over 1425%), excellent toughness (over 132 kPa), and impressive stress loading-unloading cyclic stability. The hydrogel strain sensor presents excellent electromechanical performance with a high gauge factor (1.37) and rapid response rate (198 ms), which lays the foundation for human body movement detection and smart input. Moreover, owing to the thermal-sensitive feature of poly(ionic liquid), the as-prepared hydrogel displays remarkable thermal response sensitivity (0.217°C(−1)) in body temperature range and low limit of detection, which can be applied as a body shell temperature indicator. Particularly, the hydrogel can detect dual stimuli of strain and temperature and identify each signal individually, showing the specific application in human-machine interaction and artificial intelligence. By integrating the hydrogel strain sensor into a wireless sensation system, remote motion capture and gesture identification is realized in real-time.
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spelling pubmed-86746482021-12-23 Thermoresponsive Lignin-Reinforced Poly(Ionic Liquid) Hydrogel Wireless Strain Sensor Qu, Xinyu Zhao, Ye Chen, Zi'ang Wang, Siying Ren, Yanfang Wang, Qian Shao, Jinjun Wang, Wenjun Dong, Xiaochen Research (Wash D C) Research Article To meet critical requirements on flexible electronic devices, multifunctionalized flexible sensors with excellent electromechanical performance and temperature perception are required. Herein, lignin-reinforced thermoresponsive poly(ionic liquid) hydrogel is prepared through an ultrasound-assisted synthesized method. Benefitting from the electrostatic interaction between lignin and ionic liquid, the hydrogel displays high stretchability (over 1425%), excellent toughness (over 132 kPa), and impressive stress loading-unloading cyclic stability. The hydrogel strain sensor presents excellent electromechanical performance with a high gauge factor (1.37) and rapid response rate (198 ms), which lays the foundation for human body movement detection and smart input. Moreover, owing to the thermal-sensitive feature of poly(ionic liquid), the as-prepared hydrogel displays remarkable thermal response sensitivity (0.217°C(−1)) in body temperature range and low limit of detection, which can be applied as a body shell temperature indicator. Particularly, the hydrogel can detect dual stimuli of strain and temperature and identify each signal individually, showing the specific application in human-machine interaction and artificial intelligence. By integrating the hydrogel strain sensor into a wireless sensation system, remote motion capture and gesture identification is realized in real-time. AAAS 2021-12-07 /pmc/articles/PMC8674648/ /pubmed/34957404 http://dx.doi.org/10.34133/2021/9845482 Text en Copyright © 2021 Xinyu Qu et al. https://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
Qu, Xinyu
Zhao, Ye
Chen, Zi'ang
Wang, Siying
Ren, Yanfang
Wang, Qian
Shao, Jinjun
Wang, Wenjun
Dong, Xiaochen
Thermoresponsive Lignin-Reinforced Poly(Ionic Liquid) Hydrogel Wireless Strain Sensor
title Thermoresponsive Lignin-Reinforced Poly(Ionic Liquid) Hydrogel Wireless Strain Sensor
title_full Thermoresponsive Lignin-Reinforced Poly(Ionic Liquid) Hydrogel Wireless Strain Sensor
title_fullStr Thermoresponsive Lignin-Reinforced Poly(Ionic Liquid) Hydrogel Wireless Strain Sensor
title_full_unstemmed Thermoresponsive Lignin-Reinforced Poly(Ionic Liquid) Hydrogel Wireless Strain Sensor
title_short Thermoresponsive Lignin-Reinforced Poly(Ionic Liquid) Hydrogel Wireless Strain Sensor
title_sort thermoresponsive lignin-reinforced poly(ionic liquid) hydrogel wireless strain sensor
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8674648/
https://www.ncbi.nlm.nih.gov/pubmed/34957404
http://dx.doi.org/10.34133/2021/9845482
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