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Morphology‐Controlled Aluminum‐Doped Zinc Oxide Nanofibers for Highly Sensitive NO(2) Sensors with Full Recovery at Room Temperature

Room‐temperature (RT) gas sensitivity of morphology‐controlled free‐standing hollow aluminum‐doped zinc oxide (AZO) nanofibers for NO(2) gas sensors is presented. The free‐standing hollow nanofibers are fabricated using a polyvinylpyrrolidone fiber template electrospun on a copper electrode frame fo...

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Autores principales: Sanger, Amit, Kang, Sung Bum, Jeong, Myeong Hoon, Im, Min Ji, Choi, In Young, Kim, Chan Ul, Lee, Hyungmin, Kwon, Yeong Min, Baik, Jeong Min, Jang, Ho Won, Choi, Kyoung Jin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6145242/
https://www.ncbi.nlm.nih.gov/pubmed/30250810
http://dx.doi.org/10.1002/advs.201800816
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author Sanger, Amit
Kang, Sung Bum
Jeong, Myeong Hoon
Im, Min Ji
Choi, In Young
Kim, Chan Ul
Lee, Hyungmin
Kwon, Yeong Min
Baik, Jeong Min
Jang, Ho Won
Choi, Kyoung Jin
author_facet Sanger, Amit
Kang, Sung Bum
Jeong, Myeong Hoon
Im, Min Ji
Choi, In Young
Kim, Chan Ul
Lee, Hyungmin
Kwon, Yeong Min
Baik, Jeong Min
Jang, Ho Won
Choi, Kyoung Jin
author_sort Sanger, Amit
collection PubMed
description Room‐temperature (RT) gas sensitivity of morphology‐controlled free‐standing hollow aluminum‐doped zinc oxide (AZO) nanofibers for NO(2) gas sensors is presented. The free‐standing hollow nanofibers are fabricated using a polyvinylpyrrolidone fiber template electrospun on a copper electrode frame followed by radio‐frequency sputtering of an AZO thin overlayer and heat treatment at 400 °C to burn off the polymer template. The thickness of the AZO layer is controlled by the deposition time. The gas sensor based on the hollow nanofibers demonstrates fully recoverable n‐type RT sensing of low concentrations of NO(2) (0.5 ppm). A gas sensor fabricated with Al(2)O(3)‐filled AZO nanofibers exhibits no gas sensitivity below 75 °C. The gas sensitivity of a sensor is determined by the density of molecules above the minimum energy for adsorption, collision frequency of gas molecules with the surface, and available adsorption sites. Based on finite‐difference time‐domain simulations, the RT sensitivity of hollow nanofiber sensors is ascribed to the ten times higher collision frequency of NO(2) molecules confined inside the fiber compared to the outer surface, as well as twice the surface area of hollow nanofibers compared to the filled ones. This approach might lead to the realization of RT sensitive gas sensors with 1D nanostructures.
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spelling pubmed-61452422018-09-24 Morphology‐Controlled Aluminum‐Doped Zinc Oxide Nanofibers for Highly Sensitive NO(2) Sensors with Full Recovery at Room Temperature Sanger, Amit Kang, Sung Bum Jeong, Myeong Hoon Im, Min Ji Choi, In Young Kim, Chan Ul Lee, Hyungmin Kwon, Yeong Min Baik, Jeong Min Jang, Ho Won Choi, Kyoung Jin Adv Sci (Weinh) Full Papers Room‐temperature (RT) gas sensitivity of morphology‐controlled free‐standing hollow aluminum‐doped zinc oxide (AZO) nanofibers for NO(2) gas sensors is presented. The free‐standing hollow nanofibers are fabricated using a polyvinylpyrrolidone fiber template electrospun on a copper electrode frame followed by radio‐frequency sputtering of an AZO thin overlayer and heat treatment at 400 °C to burn off the polymer template. The thickness of the AZO layer is controlled by the deposition time. The gas sensor based on the hollow nanofibers demonstrates fully recoverable n‐type RT sensing of low concentrations of NO(2) (0.5 ppm). A gas sensor fabricated with Al(2)O(3)‐filled AZO nanofibers exhibits no gas sensitivity below 75 °C. The gas sensitivity of a sensor is determined by the density of molecules above the minimum energy for adsorption, collision frequency of gas molecules with the surface, and available adsorption sites. Based on finite‐difference time‐domain simulations, the RT sensitivity of hollow nanofiber sensors is ascribed to the ten times higher collision frequency of NO(2) molecules confined inside the fiber compared to the outer surface, as well as twice the surface area of hollow nanofibers compared to the filled ones. This approach might lead to the realization of RT sensitive gas sensors with 1D nanostructures. John Wiley and Sons Inc. 2018-07-23 /pmc/articles/PMC6145242/ /pubmed/30250810 http://dx.doi.org/10.1002/advs.201800816 Text en © 2018 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Sanger, Amit
Kang, Sung Bum
Jeong, Myeong Hoon
Im, Min Ji
Choi, In Young
Kim, Chan Ul
Lee, Hyungmin
Kwon, Yeong Min
Baik, Jeong Min
Jang, Ho Won
Choi, Kyoung Jin
Morphology‐Controlled Aluminum‐Doped Zinc Oxide Nanofibers for Highly Sensitive NO(2) Sensors with Full Recovery at Room Temperature
title Morphology‐Controlled Aluminum‐Doped Zinc Oxide Nanofibers for Highly Sensitive NO(2) Sensors with Full Recovery at Room Temperature
title_full Morphology‐Controlled Aluminum‐Doped Zinc Oxide Nanofibers for Highly Sensitive NO(2) Sensors with Full Recovery at Room Temperature
title_fullStr Morphology‐Controlled Aluminum‐Doped Zinc Oxide Nanofibers for Highly Sensitive NO(2) Sensors with Full Recovery at Room Temperature
title_full_unstemmed Morphology‐Controlled Aluminum‐Doped Zinc Oxide Nanofibers for Highly Sensitive NO(2) Sensors with Full Recovery at Room Temperature
title_short Morphology‐Controlled Aluminum‐Doped Zinc Oxide Nanofibers for Highly Sensitive NO(2) Sensors with Full Recovery at Room Temperature
title_sort morphology‐controlled aluminum‐doped zinc oxide nanofibers for highly sensitive no(2) sensors with full recovery at room temperature
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6145242/
https://www.ncbi.nlm.nih.gov/pubmed/30250810
http://dx.doi.org/10.1002/advs.201800816
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