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Reduced graphene oxide-based highly sensitive pressure sensor for wearable electronics via an ordered structure and enhanced interlayer interaction mechanism

Compressible carbon materials have promising applications in various wearable devices. However, it is still difficult to prepare a carbon material with superior mechanical properties, stable strain-electrical signal response, and high linear sensitivity. In this study, a compressible and conductive...

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Detalles Bibliográficos
Autores principales: Zhou, Kemeng, Chen, Changzhou, Lei, Min, Gao, Qian, Nie, Shuangxi, Liu, Xinliang, Wang, Shuangfei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9048576/
https://www.ncbi.nlm.nih.gov/pubmed/35494612
http://dx.doi.org/10.1039/c9ra08653f
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author Zhou, Kemeng
Chen, Changzhou
Lei, Min
Gao, Qian
Nie, Shuangxi
Liu, Xinliang
Wang, Shuangfei
author_facet Zhou, Kemeng
Chen, Changzhou
Lei, Min
Gao, Qian
Nie, Shuangxi
Liu, Xinliang
Wang, Shuangfei
author_sort Zhou, Kemeng
collection PubMed
description Compressible carbon materials have promising applications in various wearable devices. However, it is still difficult to prepare a carbon material with superior mechanical properties, stable strain-electrical signal response, and high linear sensitivity. In this study, a compressible and conductive carbon aerogel with excellent properties is obtained by designing an ordered wavy layered structure with enhanced interactions between carbon layers. Bidirectional freezing is used to produce a wavy layered structure. Cellulose nanocrystals (CNC) and lignin play important roles in enhancing the interactions between reduced graphene oxide (rGO) layers. Due to the design of the carbon aerogel structure and interlayer interactions, the prepared carbon aerogel exhibits supercompressibility (up to 99% ultimate strain), excellent elasticity and fatigue resistance (91.3% height retention after 10 000 cycles at a strain of 30%), and stable strain-current response. Moreover, the carbon aerogel demonstrated an ultrahigh sensitivity of 190.94 kPa(−1), a wide linear range (within strain of 0–80%), and a low detection limit for pressure (0.875 Pa). These advantages suggest that this carbon aerogel has great application potential in wearable devices.
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spelling pubmed-90485762022-04-28 Reduced graphene oxide-based highly sensitive pressure sensor for wearable electronics via an ordered structure and enhanced interlayer interaction mechanism Zhou, Kemeng Chen, Changzhou Lei, Min Gao, Qian Nie, Shuangxi Liu, Xinliang Wang, Shuangfei RSC Adv Chemistry Compressible carbon materials have promising applications in various wearable devices. However, it is still difficult to prepare a carbon material with superior mechanical properties, stable strain-electrical signal response, and high linear sensitivity. In this study, a compressible and conductive carbon aerogel with excellent properties is obtained by designing an ordered wavy layered structure with enhanced interactions between carbon layers. Bidirectional freezing is used to produce a wavy layered structure. Cellulose nanocrystals (CNC) and lignin play important roles in enhancing the interactions between reduced graphene oxide (rGO) layers. Due to the design of the carbon aerogel structure and interlayer interactions, the prepared carbon aerogel exhibits supercompressibility (up to 99% ultimate strain), excellent elasticity and fatigue resistance (91.3% height retention after 10 000 cycles at a strain of 30%), and stable strain-current response. Moreover, the carbon aerogel demonstrated an ultrahigh sensitivity of 190.94 kPa(−1), a wide linear range (within strain of 0–80%), and a low detection limit for pressure (0.875 Pa). These advantages suggest that this carbon aerogel has great application potential in wearable devices. The Royal Society of Chemistry 2020-01-10 /pmc/articles/PMC9048576/ /pubmed/35494612 http://dx.doi.org/10.1039/c9ra08653f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhou, Kemeng
Chen, Changzhou
Lei, Min
Gao, Qian
Nie, Shuangxi
Liu, Xinliang
Wang, Shuangfei
Reduced graphene oxide-based highly sensitive pressure sensor for wearable electronics via an ordered structure and enhanced interlayer interaction mechanism
title Reduced graphene oxide-based highly sensitive pressure sensor for wearable electronics via an ordered structure and enhanced interlayer interaction mechanism
title_full Reduced graphene oxide-based highly sensitive pressure sensor for wearable electronics via an ordered structure and enhanced interlayer interaction mechanism
title_fullStr Reduced graphene oxide-based highly sensitive pressure sensor for wearable electronics via an ordered structure and enhanced interlayer interaction mechanism
title_full_unstemmed Reduced graphene oxide-based highly sensitive pressure sensor for wearable electronics via an ordered structure and enhanced interlayer interaction mechanism
title_short Reduced graphene oxide-based highly sensitive pressure sensor for wearable electronics via an ordered structure and enhanced interlayer interaction mechanism
title_sort reduced graphene oxide-based highly sensitive pressure sensor for wearable electronics via an ordered structure and enhanced interlayer interaction mechanism
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9048576/
https://www.ncbi.nlm.nih.gov/pubmed/35494612
http://dx.doi.org/10.1039/c9ra08653f
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