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Flexible and Integrated Sensing Platform of Acoustic Waves and Metamaterials based on Polyimide-Coated Woven Carbon Fibers

[Image: see text] Versatile, in situ sensing and continuous monitoring capabilities are critically needed, but challenging, for components made of solid woven carbon fibers in aerospace, electronics, and medical applications. In this work, we proposed a unique concept of integrated sensing technolog...

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Autores principales: Tao, Ran, Zahertar, Shahrzad, Torun, Hamdi, Liu, Yi Ru, Wang, Meng, Lu, Yuchao, Luo, Jing Ting, Vernon, Jethro, Binns, Richard, He, Yang, Tao, Kai, Wu, Qiang, Chang, Hong Long, Fu, Yong Qing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8009594/
https://www.ncbi.nlm.nih.gov/pubmed/32686395
http://dx.doi.org/10.1021/acssensors.0c00948
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author Tao, Ran
Zahertar, Shahrzad
Torun, Hamdi
Liu, Yi Ru
Wang, Meng
Lu, Yuchao
Luo, Jing Ting
Vernon, Jethro
Binns, Richard
He, Yang
Tao, Kai
Wu, Qiang
Chang, Hong Long
Fu, Yong Qing
author_facet Tao, Ran
Zahertar, Shahrzad
Torun, Hamdi
Liu, Yi Ru
Wang, Meng
Lu, Yuchao
Luo, Jing Ting
Vernon, Jethro
Binns, Richard
He, Yang
Tao, Kai
Wu, Qiang
Chang, Hong Long
Fu, Yong Qing
author_sort Tao, Ran
collection PubMed
description [Image: see text] Versatile, in situ sensing and continuous monitoring capabilities are critically needed, but challenging, for components made of solid woven carbon fibers in aerospace, electronics, and medical applications. In this work, we proposed a unique concept of integrated sensing technology on woven carbon fibers through integration of thin-film surface acoustic wave (SAW) technology and electromagnetic metamaterials, with capabilities of noninvasive, in situ, and continuous monitoring of environmental parameters and biomolecules wirelessly. First, we fabricated composite materials using a three-layer composite design, in which the woven carbon fiber cloth was first coated with a polyimide (PI) layer followed by a layer of ZnO film. Integrated SAW and metamaterials devices were then fabricated on this composite structure. The temperature of the functional area of the device could be controlled precisely using the SAW devices, which could provide a proper incubation environment for biosampling processes. As an ultraviolet light sensor, the SAW device could achieve a good sensitivity of 56.86 ppm/(mW/cm(2)). On the same integrated platform, an electromagnetic resonator based on the metamaterials was demonstrated to work as a glucose concentration monitor with a sensitivity of 0.34 MHz/(mg/dL).
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spelling pubmed-80095942021-03-31 Flexible and Integrated Sensing Platform of Acoustic Waves and Metamaterials based on Polyimide-Coated Woven Carbon Fibers Tao, Ran Zahertar, Shahrzad Torun, Hamdi Liu, Yi Ru Wang, Meng Lu, Yuchao Luo, Jing Ting Vernon, Jethro Binns, Richard He, Yang Tao, Kai Wu, Qiang Chang, Hong Long Fu, Yong Qing ACS Sens [Image: see text] Versatile, in situ sensing and continuous monitoring capabilities are critically needed, but challenging, for components made of solid woven carbon fibers in aerospace, electronics, and medical applications. In this work, we proposed a unique concept of integrated sensing technology on woven carbon fibers through integration of thin-film surface acoustic wave (SAW) technology and electromagnetic metamaterials, with capabilities of noninvasive, in situ, and continuous monitoring of environmental parameters and biomolecules wirelessly. First, we fabricated composite materials using a three-layer composite design, in which the woven carbon fiber cloth was first coated with a polyimide (PI) layer followed by a layer of ZnO film. Integrated SAW and metamaterials devices were then fabricated on this composite structure. The temperature of the functional area of the device could be controlled precisely using the SAW devices, which could provide a proper incubation environment for biosampling processes. As an ultraviolet light sensor, the SAW device could achieve a good sensitivity of 56.86 ppm/(mW/cm(2)). On the same integrated platform, an electromagnetic resonator based on the metamaterials was demonstrated to work as a glucose concentration monitor with a sensitivity of 0.34 MHz/(mg/dL). American Chemical Society 2020-07-20 2020-08-28 /pmc/articles/PMC8009594/ /pubmed/32686395 http://dx.doi.org/10.1021/acssensors.0c00948 Text en Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Tao, Ran
Zahertar, Shahrzad
Torun, Hamdi
Liu, Yi Ru
Wang, Meng
Lu, Yuchao
Luo, Jing Ting
Vernon, Jethro
Binns, Richard
He, Yang
Tao, Kai
Wu, Qiang
Chang, Hong Long
Fu, Yong Qing
Flexible and Integrated Sensing Platform of Acoustic Waves and Metamaterials based on Polyimide-Coated Woven Carbon Fibers
title Flexible and Integrated Sensing Platform of Acoustic Waves and Metamaterials based on Polyimide-Coated Woven Carbon Fibers
title_full Flexible and Integrated Sensing Platform of Acoustic Waves and Metamaterials based on Polyimide-Coated Woven Carbon Fibers
title_fullStr Flexible and Integrated Sensing Platform of Acoustic Waves and Metamaterials based on Polyimide-Coated Woven Carbon Fibers
title_full_unstemmed Flexible and Integrated Sensing Platform of Acoustic Waves and Metamaterials based on Polyimide-Coated Woven Carbon Fibers
title_short Flexible and Integrated Sensing Platform of Acoustic Waves and Metamaterials based on Polyimide-Coated Woven Carbon Fibers
title_sort flexible and integrated sensing platform of acoustic waves and metamaterials based on polyimide-coated woven carbon fibers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8009594/
https://www.ncbi.nlm.nih.gov/pubmed/32686395
http://dx.doi.org/10.1021/acssensors.0c00948
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