Ultraviolet enhanced inorganic graphenylene-like ZnMgX2 (X=O, S) for sensitive and reversible detection of toxic formaldehyde at room temperature: A first-principles study
This study investigates the interaction between formaldehyde (HCHO) and newly predicted graphenylene-like ZnMgX2 (X=O, S) monolayers based on first-principles calculations. It was found that the adsorption performance of HCHO molecule on pure ZnMgX2 monolayers was favorable and exothermic in nature,...
Published in: | SURFACES AND INTERFACES |
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Main Authors: | , , , , |
Format: | Article; Early Access |
Language: | English |
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2024
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Online Access: | https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001139001800001 |
author |
Chang Yee Hui Robin; Abdullahi Yusuf Zuntu; Tuh Moi Hua; Lim Thong Leng |
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spellingShingle |
Chang Yee Hui Robin; Abdullahi Yusuf Zuntu; Tuh Moi Hua; Lim Thong Leng Ultraviolet enhanced inorganic graphenylene-like ZnMgX2 (X=O, S) for sensitive and reversible detection of toxic formaldehyde at room temperature: A first-principles study Chemistry; Materials Science; Physics |
author_facet |
Chang Yee Hui Robin; Abdullahi Yusuf Zuntu; Tuh Moi Hua; Lim Thong Leng |
author_sort |
Chang |
spelling |
Chang, Yee Hui Robin; Abdullahi, Yusuf Zuntu; Tuh, Moi Hua; Lim, Thong Leng Ultraviolet enhanced inorganic graphenylene-like ZnMgX2 (X=O, S) for sensitive and reversible detection of toxic formaldehyde at room temperature: A first-principles study SURFACES AND INTERFACES English Article; Early Access This study investigates the interaction between formaldehyde (HCHO) and newly predicted graphenylene-like ZnMgX2 (X=O, S) monolayers based on first-principles calculations. It was found that the adsorption performance of HCHO molecule on pure ZnMgX2 monolayers was favorable and exothermic in nature, exhibiting no need for the presence of a metal support. Their experimental feasibility was proven through various analyses, including the evaluation of cohesive energy, phonon dispersion and ab initio molecular dynamics (AIMD) sim-ulations. The results of the topological analysis indicate that the examined monolayers are stabilized by the mixed ionic-covalent bond. By systematically analyzing the adsorption energy, charge transfer, band gap, work function and presence of competing gases (H2O, N2, O2 and H2), their detection sensitivity and response times were determined. Under the presence of ultraviolet (UV) irradiation, the ZnMgO2 system demonstrates suitability as an electronic sensor for HCHO detection at room temperature, while ZnMgS2 with its large adsorption energy has the potential to be used for scavenging HCHO. Further investigation into the adsorption of H2O and O2 yields supporting evidence for high selectivity and improved recovery time of HCHO and potential formation of hydroxyl (center dot OH) and superoxide (O2 center dot ) radicals, thereby establishing favorable conditions for eventual catalytic degradation of HCHO. This study will serve as a theoretical foundation for the development of HCHO gas sensors intended for both small-scale and industrial applications. ELSEVIER 2468-0230 2024 44 10.1016/j.surfin.2023.103722 Chemistry; Materials Science; Physics Bronze WOS:001139001800001 https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001139001800001 |
title |
Ultraviolet enhanced inorganic graphenylene-like ZnMgX2 (X=O, S) for sensitive and reversible detection of toxic formaldehyde at room temperature: A first-principles study |
title_short |
Ultraviolet enhanced inorganic graphenylene-like ZnMgX2 (X=O, S) for sensitive and reversible detection of toxic formaldehyde at room temperature: A first-principles study |
title_full |
Ultraviolet enhanced inorganic graphenylene-like ZnMgX2 (X=O, S) for sensitive and reversible detection of toxic formaldehyde at room temperature: A first-principles study |
title_fullStr |
Ultraviolet enhanced inorganic graphenylene-like ZnMgX2 (X=O, S) for sensitive and reversible detection of toxic formaldehyde at room temperature: A first-principles study |
title_full_unstemmed |
Ultraviolet enhanced inorganic graphenylene-like ZnMgX2 (X=O, S) for sensitive and reversible detection of toxic formaldehyde at room temperature: A first-principles study |
title_sort |
Ultraviolet enhanced inorganic graphenylene-like ZnMgX2 (X=O, S) for sensitive and reversible detection of toxic formaldehyde at room temperature: A first-principles study |
container_title |
SURFACES AND INTERFACES |
language |
English |
format |
Article; Early Access |
description |
This study investigates the interaction between formaldehyde (HCHO) and newly predicted graphenylene-like ZnMgX2 (X=O, S) monolayers based on first-principles calculations. It was found that the adsorption performance of HCHO molecule on pure ZnMgX2 monolayers was favorable and exothermic in nature, exhibiting no need for the presence of a metal support. Their experimental feasibility was proven through various analyses, including the evaluation of cohesive energy, phonon dispersion and ab initio molecular dynamics (AIMD) sim-ulations. The results of the topological analysis indicate that the examined monolayers are stabilized by the mixed ionic-covalent bond. By systematically analyzing the adsorption energy, charge transfer, band gap, work function and presence of competing gases (H2O, N2, O2 and H2), their detection sensitivity and response times were determined. Under the presence of ultraviolet (UV) irradiation, the ZnMgO2 system demonstrates suitability as an electronic sensor for HCHO detection at room temperature, while ZnMgS2 with its large adsorption energy has the potential to be used for scavenging HCHO. Further investigation into the adsorption of H2O and O2 yields supporting evidence for high selectivity and improved recovery time of HCHO and potential formation of hydroxyl (center dot OH) and superoxide (O2 center dot ) radicals, thereby establishing favorable conditions for eventual catalytic degradation of HCHO. This study will serve as a theoretical foundation for the development of HCHO gas sensors intended for both small-scale and industrial applications. |
publisher |
ELSEVIER |
issn |
2468-0230 |
publishDate |
2024 |
container_volume |
44 |
container_issue |
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doi_str_mv |
10.1016/j.surfin.2023.103722 |
topic |
Chemistry; Materials Science; Physics |
topic_facet |
Chemistry; Materials Science; Physics |
accesstype |
Bronze |
id |
WOS:001139001800001 |
url |
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001139001800001 |
record_format |
wos |
collection |
Web of Science (WoS) |
_version_ |
1809678578318573568 |