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Wool-Based Carbon Fiber/MoS(2) Composite Prepared by Low-Temperature Catalytic Hydrothermal Method and Its Application in the Field of Gas Sensors

Under the background of the Paris Agreement on reducing greenhouse gases, waste wools were converted into wool carbon fiber (WCF) and WCF–MoS(2) composites by low-temperature catalytic hydrothermal carbonization. Their structures and gas-sensing performances were studied for the first time. Due to t...

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Autores principales: Xia, Yidan, Wu, Zhaofeng, Qin, Zhangjie, Chen, Fengjuan, Lv, Changwu, Zhang, Min, Shaymurat, Talgar, Duan, Haiming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9000424/
https://www.ncbi.nlm.nih.gov/pubmed/35407223
http://dx.doi.org/10.3390/nano12071105
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author Xia, Yidan
Wu, Zhaofeng
Qin, Zhangjie
Chen, Fengjuan
Lv, Changwu
Zhang, Min
Shaymurat, Talgar
Duan, Haiming
author_facet Xia, Yidan
Wu, Zhaofeng
Qin, Zhangjie
Chen, Fengjuan
Lv, Changwu
Zhang, Min
Shaymurat, Talgar
Duan, Haiming
author_sort Xia, Yidan
collection PubMed
description Under the background of the Paris Agreement on reducing greenhouse gases, waste wools were converted into wool carbon fiber (WCF) and WCF–MoS(2) composites by low-temperature catalytic hydrothermal carbonization. Their structures and gas-sensing performances were studied for the first time. Due to the existence of heterojunctions, the responses of the WCF–MoS(2) composite to the five analytes were 3–400 times those of MoS(2) and 2–11 times those of WCF. Interestingly, because of the N, P, and S elements contained in wools, the WCF prepared by the hydrothermal method was realized the doping of N, P, and S, which caused the sensing curves of WCF to have different shapes for different analytes. This characteristic was also well demonstrated by the WCF–MoS(2) composite, which inspired us to realize the discriminative detection only by a single WCF–MoS(2) sensor and image recognition technology. What’s more, the WCF–MoS(2) composite also showed a high sensitivity, a high selectivity, and a rapid response to NH(3). The response time and the recovery time to 3 ppm NH(3) were about 16 and 5 s, respectively. The detection of limit of WCF–MoS(2) for NH(3) was 19.1 ppb. This work provides a new idea for the development of sensors and the resource utilization of wool waste.
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spelling pubmed-90004242022-04-12 Wool-Based Carbon Fiber/MoS(2) Composite Prepared by Low-Temperature Catalytic Hydrothermal Method and Its Application in the Field of Gas Sensors Xia, Yidan Wu, Zhaofeng Qin, Zhangjie Chen, Fengjuan Lv, Changwu Zhang, Min Shaymurat, Talgar Duan, Haiming Nanomaterials (Basel) Article Under the background of the Paris Agreement on reducing greenhouse gases, waste wools were converted into wool carbon fiber (WCF) and WCF–MoS(2) composites by low-temperature catalytic hydrothermal carbonization. Their structures and gas-sensing performances were studied for the first time. Due to the existence of heterojunctions, the responses of the WCF–MoS(2) composite to the five analytes were 3–400 times those of MoS(2) and 2–11 times those of WCF. Interestingly, because of the N, P, and S elements contained in wools, the WCF prepared by the hydrothermal method was realized the doping of N, P, and S, which caused the sensing curves of WCF to have different shapes for different analytes. This characteristic was also well demonstrated by the WCF–MoS(2) composite, which inspired us to realize the discriminative detection only by a single WCF–MoS(2) sensor and image recognition technology. What’s more, the WCF–MoS(2) composite also showed a high sensitivity, a high selectivity, and a rapid response to NH(3). The response time and the recovery time to 3 ppm NH(3) were about 16 and 5 s, respectively. The detection of limit of WCF–MoS(2) for NH(3) was 19.1 ppb. This work provides a new idea for the development of sensors and the resource utilization of wool waste. MDPI 2022-03-28 /pmc/articles/PMC9000424/ /pubmed/35407223 http://dx.doi.org/10.3390/nano12071105 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Xia, Yidan
Wu, Zhaofeng
Qin, Zhangjie
Chen, Fengjuan
Lv, Changwu
Zhang, Min
Shaymurat, Talgar
Duan, Haiming
Wool-Based Carbon Fiber/MoS(2) Composite Prepared by Low-Temperature Catalytic Hydrothermal Method and Its Application in the Field of Gas Sensors
title Wool-Based Carbon Fiber/MoS(2) Composite Prepared by Low-Temperature Catalytic Hydrothermal Method and Its Application in the Field of Gas Sensors
title_full Wool-Based Carbon Fiber/MoS(2) Composite Prepared by Low-Temperature Catalytic Hydrothermal Method and Its Application in the Field of Gas Sensors
title_fullStr Wool-Based Carbon Fiber/MoS(2) Composite Prepared by Low-Temperature Catalytic Hydrothermal Method and Its Application in the Field of Gas Sensors
title_full_unstemmed Wool-Based Carbon Fiber/MoS(2) Composite Prepared by Low-Temperature Catalytic Hydrothermal Method and Its Application in the Field of Gas Sensors
title_short Wool-Based Carbon Fiber/MoS(2) Composite Prepared by Low-Temperature Catalytic Hydrothermal Method and Its Application in the Field of Gas Sensors
title_sort wool-based carbon fiber/mos(2) composite prepared by low-temperature catalytic hydrothermal method and its application in the field of gas sensors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9000424/
https://www.ncbi.nlm.nih.gov/pubmed/35407223
http://dx.doi.org/10.3390/nano12071105
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