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Hydrogen Sensors Based on Flexible Carbon Nanotube-Palladium Composite Sheets Integrated with Ripstop Fabric

[Image: see text] This work describes the design and fabrication of free-standing carbon nanotube-palladium (CNT-Pd) composite sheets for hydrogen gas sensing. The CNT-Pd composites were made by electroplating palladium onto a solvent-densified and oxygen plasma-treated CNT sheet. The latter was pre...

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Autores principales: McConnell, Colin, Kanakaraj, Sathya Narayan, Dugre, Joshua, Malik, Rachit, Zhang, Guangqi, Haase, Mark R., Hsieh, Yu-Yun, Fang, Yanbo, Mast, David, Shanov, Vesselin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6964304/
https://www.ncbi.nlm.nih.gov/pubmed/31956795
http://dx.doi.org/10.1021/acsomega.9b03023
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author McConnell, Colin
Kanakaraj, Sathya Narayan
Dugre, Joshua
Malik, Rachit
Zhang, Guangqi
Haase, Mark R.
Hsieh, Yu-Yun
Fang, Yanbo
Mast, David
Shanov, Vesselin
author_facet McConnell, Colin
Kanakaraj, Sathya Narayan
Dugre, Joshua
Malik, Rachit
Zhang, Guangqi
Haase, Mark R.
Hsieh, Yu-Yun
Fang, Yanbo
Mast, David
Shanov, Vesselin
author_sort McConnell, Colin
collection PubMed
description [Image: see text] This work describes the design and fabrication of free-standing carbon nanotube-palladium (CNT-Pd) composite sheets for hydrogen gas sensing. The CNT-Pd composites were made by electroplating palladium onto a solvent-densified and oxygen plasma-treated CNT sheet. The latter was prepared using high purity CNTs drawn from a dense, vertically aligned array grown by chemical vapor deposition on silicon substrates. The CNT-Pd sheets were characterized by energy-dispersive spectroscopy, scanning electron microscopy, and X-ray diffraction. The amount of palladium in the composite was 16.5 wt % as measured via thermogravimetric analysis. Thin strips of the CNT-Pd sheets were assembled as chemiresistor sensors and tested for hydrogen gas detection. The sensors demonstrated a limit of detection of 0.1 mol % and displayed signal reversibility without the need for oxygen removal or heat treatment. A decrease in signal reversibility was observed after multiple exposure cycles; however, redensification with ethanol significantly restored the original reversibility. The sensor showed the Freundlich adsorption isotherm behavior when exposed to hydrogen. The material’s potential application toward a wearable, flexible sensor was demonstrated by integrating the chemiresistor onto a fabric material using hot-press processing and testing the composite for hydrogen sensitivity.
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spelling pubmed-69643042020-01-17 Hydrogen Sensors Based on Flexible Carbon Nanotube-Palladium Composite Sheets Integrated with Ripstop Fabric McConnell, Colin Kanakaraj, Sathya Narayan Dugre, Joshua Malik, Rachit Zhang, Guangqi Haase, Mark R. Hsieh, Yu-Yun Fang, Yanbo Mast, David Shanov, Vesselin ACS Omega [Image: see text] This work describes the design and fabrication of free-standing carbon nanotube-palladium (CNT-Pd) composite sheets for hydrogen gas sensing. The CNT-Pd composites were made by electroplating palladium onto a solvent-densified and oxygen plasma-treated CNT sheet. The latter was prepared using high purity CNTs drawn from a dense, vertically aligned array grown by chemical vapor deposition on silicon substrates. The CNT-Pd sheets were characterized by energy-dispersive spectroscopy, scanning electron microscopy, and X-ray diffraction. The amount of palladium in the composite was 16.5 wt % as measured via thermogravimetric analysis. Thin strips of the CNT-Pd sheets were assembled as chemiresistor sensors and tested for hydrogen gas detection. The sensors demonstrated a limit of detection of 0.1 mol % and displayed signal reversibility without the need for oxygen removal or heat treatment. A decrease in signal reversibility was observed after multiple exposure cycles; however, redensification with ethanol significantly restored the original reversibility. The sensor showed the Freundlich adsorption isotherm behavior when exposed to hydrogen. The material’s potential application toward a wearable, flexible sensor was demonstrated by integrating the chemiresistor onto a fabric material using hot-press processing and testing the composite for hydrogen sensitivity. American Chemical Society 2019-12-23 /pmc/articles/PMC6964304/ /pubmed/31956795 http://dx.doi.org/10.1021/acsomega.9b03023 Text en Copyright © 2019 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle McConnell, Colin
Kanakaraj, Sathya Narayan
Dugre, Joshua
Malik, Rachit
Zhang, Guangqi
Haase, Mark R.
Hsieh, Yu-Yun
Fang, Yanbo
Mast, David
Shanov, Vesselin
Hydrogen Sensors Based on Flexible Carbon Nanotube-Palladium Composite Sheets Integrated with Ripstop Fabric
title Hydrogen Sensors Based on Flexible Carbon Nanotube-Palladium Composite Sheets Integrated with Ripstop Fabric
title_full Hydrogen Sensors Based on Flexible Carbon Nanotube-Palladium Composite Sheets Integrated with Ripstop Fabric
title_fullStr Hydrogen Sensors Based on Flexible Carbon Nanotube-Palladium Composite Sheets Integrated with Ripstop Fabric
title_full_unstemmed Hydrogen Sensors Based on Flexible Carbon Nanotube-Palladium Composite Sheets Integrated with Ripstop Fabric
title_short Hydrogen Sensors Based on Flexible Carbon Nanotube-Palladium Composite Sheets Integrated with Ripstop Fabric
title_sort hydrogen sensors based on flexible carbon nanotube-palladium composite sheets integrated with ripstop fabric
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6964304/
https://www.ncbi.nlm.nih.gov/pubmed/31956795
http://dx.doi.org/10.1021/acsomega.9b03023
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