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DFT calculation and analysis of the gas sensing mechanism of methoxy propanol on Ag decorated SnO(2) (110) surface

Methoxy propanol has been widely used in modern industry and consumer products. Inhalation or skin exposure to methoxy propanol for a long period would bring about safety challenges on human habitat and health. Ag decorated SnO(2) mesoporous material has been synthesized and shown to exhibit high se...

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Autores principales: Li, Meihua, Zhu, Huichao, Wei, Guangfen, He, Aixiang, Liu, Yanli
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9074410/
https://www.ncbi.nlm.nih.gov/pubmed/35528108
http://dx.doi.org/10.1039/c9ra02958c
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author Li, Meihua
Zhu, Huichao
Wei, Guangfen
He, Aixiang
Liu, Yanli
author_facet Li, Meihua
Zhu, Huichao
Wei, Guangfen
He, Aixiang
Liu, Yanli
author_sort Li, Meihua
collection PubMed
description Methoxy propanol has been widely used in modern industry and consumer products. Inhalation or skin exposure to methoxy propanol for a long period would bring about safety challenges on human habitat and health. Ag decorated SnO(2) mesoporous material has been synthesized and shown to exhibit high sensitivity and good selectivity to methoxy propanol among other interferential VOC gases. Density Functional Theory study were conducted to yield insight into the surface–adsorbate interactions and therefore the gas sensing improvement mechanism by presenting accurate energetic and electronic properties for the Ag/SnO(2) system. Firstly, an electron transfer model on Ag and SnO(2) grain interface was put forward to illustrate the methoxy propanol gas sensing mechanism. Then, a three-layer adsorption model (TLAM) was proposed to investigate methoxy propanol gas sensing properties on a SnO(2) (110) surface. In the TLAM method, taking SnO(2) (110) surface for the basis, layer 1 illustrates the decoration of metal Ag on SnO(2) (110) surface. Layer 2 represents the adsorption of molecular oxygen on metal Ag decorated SnO(2) (110) surface. Layer 3 indicates the adsorption of methoxy propanol, and for comparison, three other VOC gases (namely, ethanol, isopropanol and p-xylene) on Ag decorated SnO(2) (110) surface with oxygen species pre-adsorbed consecutively. All the adsorption processes were calculated by means of Density Functional Theory method; the adsorption energy, net charge transfer, DOS, PDOS and also experimental data were utilized to investigate the methoxy propanol gas sensing mechanism on Ag decorated SnO(2) (110) surface with oxygen species pre-adsorbed.
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spelling pubmed-90744102022-05-06 DFT calculation and analysis of the gas sensing mechanism of methoxy propanol on Ag decorated SnO(2) (110) surface Li, Meihua Zhu, Huichao Wei, Guangfen He, Aixiang Liu, Yanli RSC Adv Chemistry Methoxy propanol has been widely used in modern industry and consumer products. Inhalation or skin exposure to methoxy propanol for a long period would bring about safety challenges on human habitat and health. Ag decorated SnO(2) mesoporous material has been synthesized and shown to exhibit high sensitivity and good selectivity to methoxy propanol among other interferential VOC gases. Density Functional Theory study were conducted to yield insight into the surface–adsorbate interactions and therefore the gas sensing improvement mechanism by presenting accurate energetic and electronic properties for the Ag/SnO(2) system. Firstly, an electron transfer model on Ag and SnO(2) grain interface was put forward to illustrate the methoxy propanol gas sensing mechanism. Then, a three-layer adsorption model (TLAM) was proposed to investigate methoxy propanol gas sensing properties on a SnO(2) (110) surface. In the TLAM method, taking SnO(2) (110) surface for the basis, layer 1 illustrates the decoration of metal Ag on SnO(2) (110) surface. Layer 2 represents the adsorption of molecular oxygen on metal Ag decorated SnO(2) (110) surface. Layer 3 indicates the adsorption of methoxy propanol, and for comparison, three other VOC gases (namely, ethanol, isopropanol and p-xylene) on Ag decorated SnO(2) (110) surface with oxygen species pre-adsorbed consecutively. All the adsorption processes were calculated by means of Density Functional Theory method; the adsorption energy, net charge transfer, DOS, PDOS and also experimental data were utilized to investigate the methoxy propanol gas sensing mechanism on Ag decorated SnO(2) (110) surface with oxygen species pre-adsorbed. The Royal Society of Chemistry 2019-11-04 /pmc/articles/PMC9074410/ /pubmed/35528108 http://dx.doi.org/10.1039/c9ra02958c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Li, Meihua
Zhu, Huichao
Wei, Guangfen
He, Aixiang
Liu, Yanli
DFT calculation and analysis of the gas sensing mechanism of methoxy propanol on Ag decorated SnO(2) (110) surface
title DFT calculation and analysis of the gas sensing mechanism of methoxy propanol on Ag decorated SnO(2) (110) surface
title_full DFT calculation and analysis of the gas sensing mechanism of methoxy propanol on Ag decorated SnO(2) (110) surface
title_fullStr DFT calculation and analysis of the gas sensing mechanism of methoxy propanol on Ag decorated SnO(2) (110) surface
title_full_unstemmed DFT calculation and analysis of the gas sensing mechanism of methoxy propanol on Ag decorated SnO(2) (110) surface
title_short DFT calculation and analysis of the gas sensing mechanism of methoxy propanol on Ag decorated SnO(2) (110) surface
title_sort dft calculation and analysis of the gas sensing mechanism of methoxy propanol on ag decorated sno(2) (110) surface
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9074410/
https://www.ncbi.nlm.nih.gov/pubmed/35528108
http://dx.doi.org/10.1039/c9ra02958c
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