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Highly Selective Detection of Benzene and Discrimination of Volatile Aromatic Compounds Using Oxide Chemiresistors with Tunable Rh‐TiO(2) Catalytic Overlayers

Volatile aromatic compounds are major air pollutants, and their health impacts should be assessed accurately based on the concentration and composition of gas mixtures. Herein, novel bilayer sensors consisting of a SnO(2) sensing layer and three different xRh‐TiO(2) catalytic overlayers (x = 0.5, 1,...

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Autores principales: Moon, Young Kook, Jeong, Seong‐Yong, Jo, Young‐Moo, Jo, Yong Kun, Kang, Yun Chan, Lee, Jong‐Heun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7967053/
https://www.ncbi.nlm.nih.gov/pubmed/33747750
http://dx.doi.org/10.1002/advs.202004078
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author Moon, Young Kook
Jeong, Seong‐Yong
Jo, Young‐Moo
Jo, Yong Kun
Kang, Yun Chan
Lee, Jong‐Heun
author_facet Moon, Young Kook
Jeong, Seong‐Yong
Jo, Young‐Moo
Jo, Yong Kun
Kang, Yun Chan
Lee, Jong‐Heun
author_sort Moon, Young Kook
collection PubMed
description Volatile aromatic compounds are major air pollutants, and their health impacts should be assessed accurately based on the concentration and composition of gas mixtures. Herein, novel bilayer sensors consisting of a SnO(2) sensing layer and three different xRh‐TiO(2) catalytic overlayers (x = 0.5, 1, and 2 wt%) are designed for the new functionalities such as the selective detection, discrimination, and analysis of benzene, toluene, and p‐xylene. The 2Rh‐TiO(2)/SnO(2) bilayer sensor shows a high selectivity and response toward ppm‐ and sub‐ppm‐levels of benzene over a wide range of sensing temperatures (325–425 °C). An array of 0.5Rh‐, 1Rh‐, and 2Rh‐TiO(2)/SnO(2) sensors exhibits discrimination and composition analyses of aromatic compounds. The conversion of gases into more active species at moderate catalytic activation and the complete oxidation of gases into non‐reactive forms by excessive catalytic promotion are proposed as the reasons behind the enhancement and suppression of analyte gases, respectively. Analysis using proton transfer reaction‐quadrupole mass spectrometer (PTR‐QMS) is performed to verify the above proposals. Although the sensing characteristics exhibit mild moisture interference, bilayer sensors with systematic and tailored control of gas selectivity and response provide new pathways for monitoring aromatic air pollutants and evaluating their health impacts.
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spelling pubmed-79670532021-03-19 Highly Selective Detection of Benzene and Discrimination of Volatile Aromatic Compounds Using Oxide Chemiresistors with Tunable Rh‐TiO(2) Catalytic Overlayers Moon, Young Kook Jeong, Seong‐Yong Jo, Young‐Moo Jo, Yong Kun Kang, Yun Chan Lee, Jong‐Heun Adv Sci (Weinh) Full Papers Volatile aromatic compounds are major air pollutants, and their health impacts should be assessed accurately based on the concentration and composition of gas mixtures. Herein, novel bilayer sensors consisting of a SnO(2) sensing layer and three different xRh‐TiO(2) catalytic overlayers (x = 0.5, 1, and 2 wt%) are designed for the new functionalities such as the selective detection, discrimination, and analysis of benzene, toluene, and p‐xylene. The 2Rh‐TiO(2)/SnO(2) bilayer sensor shows a high selectivity and response toward ppm‐ and sub‐ppm‐levels of benzene over a wide range of sensing temperatures (325–425 °C). An array of 0.5Rh‐, 1Rh‐, and 2Rh‐TiO(2)/SnO(2) sensors exhibits discrimination and composition analyses of aromatic compounds. The conversion of gases into more active species at moderate catalytic activation and the complete oxidation of gases into non‐reactive forms by excessive catalytic promotion are proposed as the reasons behind the enhancement and suppression of analyte gases, respectively. Analysis using proton transfer reaction‐quadrupole mass spectrometer (PTR‐QMS) is performed to verify the above proposals. Although the sensing characteristics exhibit mild moisture interference, bilayer sensors with systematic and tailored control of gas selectivity and response provide new pathways for monitoring aromatic air pollutants and evaluating their health impacts. John Wiley and Sons Inc. 2021-02-01 /pmc/articles/PMC7967053/ /pubmed/33747750 http://dx.doi.org/10.1002/advs.202004078 Text en © 2021 The Authors. Advanced Science published by Wiley‐VCH GmbH 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
Moon, Young Kook
Jeong, Seong‐Yong
Jo, Young‐Moo
Jo, Yong Kun
Kang, Yun Chan
Lee, Jong‐Heun
Highly Selective Detection of Benzene and Discrimination of Volatile Aromatic Compounds Using Oxide Chemiresistors with Tunable Rh‐TiO(2) Catalytic Overlayers
title Highly Selective Detection of Benzene and Discrimination of Volatile Aromatic Compounds Using Oxide Chemiresistors with Tunable Rh‐TiO(2) Catalytic Overlayers
title_full Highly Selective Detection of Benzene and Discrimination of Volatile Aromatic Compounds Using Oxide Chemiresistors with Tunable Rh‐TiO(2) Catalytic Overlayers
title_fullStr Highly Selective Detection of Benzene and Discrimination of Volatile Aromatic Compounds Using Oxide Chemiresistors with Tunable Rh‐TiO(2) Catalytic Overlayers
title_full_unstemmed Highly Selective Detection of Benzene and Discrimination of Volatile Aromatic Compounds Using Oxide Chemiresistors with Tunable Rh‐TiO(2) Catalytic Overlayers
title_short Highly Selective Detection of Benzene and Discrimination of Volatile Aromatic Compounds Using Oxide Chemiresistors with Tunable Rh‐TiO(2) Catalytic Overlayers
title_sort highly selective detection of benzene and discrimination of volatile aromatic compounds using oxide chemiresistors with tunable rh‐tio(2) catalytic overlayers
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7967053/
https://www.ncbi.nlm.nih.gov/pubmed/33747750
http://dx.doi.org/10.1002/advs.202004078
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