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Room Temperature Ammonia Gas Sensor Based on p-Type-like V(2)O(5) Nanosheets towards Food Spoilage Monitoring

Gas sensors play an important role in many areas of human life, including the monitoring of production processes, occupational safety, food quality assessment, and air pollution monitoring. Therefore, the need for gas sensors to monitor hazardous gases, such as ammonia, at low operating temperatures...

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Detalles Bibliográficos
Autores principales: Van Duy, Lai, Nguyet, To Thi, Le, Dang Thi Thanh, Van Duy, Nguyen, Nguyen, Hugo, Biasioli, Franco, Tonezzer, Matteo, Di Natale, Corrado, Hoa, Nguyen Duc
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9823630/
https://www.ncbi.nlm.nih.gov/pubmed/36616056
http://dx.doi.org/10.3390/nano13010146
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author Van Duy, Lai
Nguyet, To Thi
Le, Dang Thi Thanh
Van Duy, Nguyen
Nguyen, Hugo
Biasioli, Franco
Tonezzer, Matteo
Di Natale, Corrado
Hoa, Nguyen Duc
author_facet Van Duy, Lai
Nguyet, To Thi
Le, Dang Thi Thanh
Van Duy, Nguyen
Nguyen, Hugo
Biasioli, Franco
Tonezzer, Matteo
Di Natale, Corrado
Hoa, Nguyen Duc
author_sort Van Duy, Lai
collection PubMed
description Gas sensors play an important role in many areas of human life, including the monitoring of production processes, occupational safety, food quality assessment, and air pollution monitoring. Therefore, the need for gas sensors to monitor hazardous gases, such as ammonia, at low operating temperatures has become increasingly important in many fields. Sensitivity, selectivity, low cost, and ease of production are crucial characteristics for creating a capillary network of sensors for the protection of the environment and human health. However, developing gas sensors that are not only efficient but also small and inexpensive and therefore integrable into everyday life is a difficult challenge. In this paper, we report on a resistive sensor for ammonia detection based on thin V(2)O(5) nanosheets operating at room temperature. The small thickness and porosity of the V(2)O(5) nanosheets give the sensors good performance for sensing ammonia at room temperature (RT), with a relative change of resistance of 9.4% to 5 ppm ammonia (NH(3)) and an estimated detection limit of 0.4 ppm. The sensor is selective with respect to the seven interferents tested; it is repeatable and stable over the long term (four months). Although V(2)O(5) is generally an n-type semiconductor, in this case the nanosheets show a p-type semiconductor behavior, and thus a possible sensing mechanism is proposed. The device’s performance, along with its size, low cost, and low power consumption, makes it a good candidate for monitoring freshness and spoilage along the food supply chain.
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spelling pubmed-98236302023-01-08 Room Temperature Ammonia Gas Sensor Based on p-Type-like V(2)O(5) Nanosheets towards Food Spoilage Monitoring Van Duy, Lai Nguyet, To Thi Le, Dang Thi Thanh Van Duy, Nguyen Nguyen, Hugo Biasioli, Franco Tonezzer, Matteo Di Natale, Corrado Hoa, Nguyen Duc Nanomaterials (Basel) Article Gas sensors play an important role in many areas of human life, including the monitoring of production processes, occupational safety, food quality assessment, and air pollution monitoring. Therefore, the need for gas sensors to monitor hazardous gases, such as ammonia, at low operating temperatures has become increasingly important in many fields. Sensitivity, selectivity, low cost, and ease of production are crucial characteristics for creating a capillary network of sensors for the protection of the environment and human health. However, developing gas sensors that are not only efficient but also small and inexpensive and therefore integrable into everyday life is a difficult challenge. In this paper, we report on a resistive sensor for ammonia detection based on thin V(2)O(5) nanosheets operating at room temperature. The small thickness and porosity of the V(2)O(5) nanosheets give the sensors good performance for sensing ammonia at room temperature (RT), with a relative change of resistance of 9.4% to 5 ppm ammonia (NH(3)) and an estimated detection limit of 0.4 ppm. The sensor is selective with respect to the seven interferents tested; it is repeatable and stable over the long term (four months). Although V(2)O(5) is generally an n-type semiconductor, in this case the nanosheets show a p-type semiconductor behavior, and thus a possible sensing mechanism is proposed. The device’s performance, along with its size, low cost, and low power consumption, makes it a good candidate for monitoring freshness and spoilage along the food supply chain. MDPI 2022-12-28 /pmc/articles/PMC9823630/ /pubmed/36616056 http://dx.doi.org/10.3390/nano13010146 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
Van Duy, Lai
Nguyet, To Thi
Le, Dang Thi Thanh
Van Duy, Nguyen
Nguyen, Hugo
Biasioli, Franco
Tonezzer, Matteo
Di Natale, Corrado
Hoa, Nguyen Duc
Room Temperature Ammonia Gas Sensor Based on p-Type-like V(2)O(5) Nanosheets towards Food Spoilage Monitoring
title Room Temperature Ammonia Gas Sensor Based on p-Type-like V(2)O(5) Nanosheets towards Food Spoilage Monitoring
title_full Room Temperature Ammonia Gas Sensor Based on p-Type-like V(2)O(5) Nanosheets towards Food Spoilage Monitoring
title_fullStr Room Temperature Ammonia Gas Sensor Based on p-Type-like V(2)O(5) Nanosheets towards Food Spoilage Monitoring
title_full_unstemmed Room Temperature Ammonia Gas Sensor Based on p-Type-like V(2)O(5) Nanosheets towards Food Spoilage Monitoring
title_short Room Temperature Ammonia Gas Sensor Based on p-Type-like V(2)O(5) Nanosheets towards Food Spoilage Monitoring
title_sort room temperature ammonia gas sensor based on p-type-like v(2)o(5) nanosheets towards food spoilage monitoring
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9823630/
https://www.ncbi.nlm.nih.gov/pubmed/36616056
http://dx.doi.org/10.3390/nano13010146
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