Evidence of the As/PtSe2 Heterostructure with a Robust Built-In Electric Field as a Competitive Z-Scheme Photocatalyst for Overall Water Splitting

The Z-scheme heterostructure photocatalysts possess unique advantages compared with other heterostructures, primarily due to their capacity to effectively separate spatial carriers while maintaining strong redox capabilities. This study employs hybrid density functional theory calculations to examin...

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出版年:JOURNAL OF PHYSICAL CHEMISTRY C
主要な著者: Chang, Yee Hui Robin; Yoshiya, Masato; Yeoh, Keat Hoe; Ismail, Wan Izhan Nawawi Wan; Jiang, Junke; Kim, Chanhyeok; Yao, Kaiyuan; Tuh, Moi Hua
フォーマット: 論文
言語:English
出版事項: AMER CHEMICAL SOC 2025
主題:
オンライン・アクセス:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001444227700001
author Chang
Yee Hui Robin; Yoshiya
Masato; Yeoh
Keat Hoe; Ismail
Wan Izhan Nawawi Wan; Jiang
Junke; Kim
Chanhyeok; Yao
Kaiyuan; Tuh
Moi Hua
spellingShingle Chang
Yee Hui Robin; Yoshiya
Masato; Yeoh
Keat Hoe; Ismail
Wan Izhan Nawawi Wan; Jiang
Junke; Kim
Chanhyeok; Yao
Kaiyuan; Tuh
Moi Hua
Evidence of the As/PtSe2 Heterostructure with a Robust Built-In Electric Field as a Competitive Z-Scheme Photocatalyst for Overall Water Splitting
Chemistry; Science & Technology - Other Topics; Materials Science
author_facet Chang
Yee Hui Robin; Yoshiya
Masato; Yeoh
Keat Hoe; Ismail
Wan Izhan Nawawi Wan; Jiang
Junke; Kim
Chanhyeok; Yao
Kaiyuan; Tuh
Moi Hua
author_sort Chang
spelling Chang, Yee Hui Robin; Yoshiya, Masato; Yeoh, Keat Hoe; Ismail, Wan Izhan Nawawi Wan; Jiang, Junke; Kim, Chanhyeok; Yao, Kaiyuan; Tuh, Moi Hua
Evidence of the As/PtSe2 Heterostructure with a Robust Built-In Electric Field as a Competitive Z-Scheme Photocatalyst for Overall Water Splitting
JOURNAL OF PHYSICAL CHEMISTRY C
English
Article
The Z-scheme heterostructure photocatalysts possess unique advantages compared with other heterostructures, primarily due to their capacity to effectively separate spatial carriers while maintaining strong redox capabilities. This study employs hybrid density functional theory calculations to examine the viability of As/PtSe2 heterostructures as a catalyst for a Z-scheme photocatalytic system. The findings indicate that the As/PtSe2 heterostructure exhibits type-II band alignments with a reduced band gap (E g) relative to its individual monolayers, high carrier mobility in the order of 103 to 104 cm2 V-1 s-1, and a robust built-in electric field of 0.38 V & Aring;-1, which improves visible light absorption and promotes the spatial separation of photogenerated carriers. Calculations also reveal that the As/PtSe2 heterostructure possesses energetic, dynamical, and thermal stabilities. In terms of performance as a light absorber, both mesoscopic and microscopic approaches yield power conversion efficiencies greater than 11%. Furthermore, under small external potential bias, the hydrogen evolution reaction and oxygen evolution reaction can be initiated spontaneously on distinct monolayers, resulting in a calculated solar energy to hydrogen efficiency based on two distinctive models that exceeds the 10% critical value for economic viability.
AMER CHEMICAL SOC
1932-7447
1932-7455
2025
129
12
10.1021/acs.jpcc.5c00818
Chemistry; Science & Technology - Other Topics; Materials Science

WOS:001444227700001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001444227700001
title Evidence of the As/PtSe2 Heterostructure with a Robust Built-In Electric Field as a Competitive Z-Scheme Photocatalyst for Overall Water Splitting
title_short Evidence of the As/PtSe2 Heterostructure with a Robust Built-In Electric Field as a Competitive Z-Scheme Photocatalyst for Overall Water Splitting
title_full Evidence of the As/PtSe2 Heterostructure with a Robust Built-In Electric Field as a Competitive Z-Scheme Photocatalyst for Overall Water Splitting
title_fullStr Evidence of the As/PtSe2 Heterostructure with a Robust Built-In Electric Field as a Competitive Z-Scheme Photocatalyst for Overall Water Splitting
title_full_unstemmed Evidence of the As/PtSe2 Heterostructure with a Robust Built-In Electric Field as a Competitive Z-Scheme Photocatalyst for Overall Water Splitting
title_sort Evidence of the As/PtSe2 Heterostructure with a Robust Built-In Electric Field as a Competitive Z-Scheme Photocatalyst for Overall Water Splitting
container_title JOURNAL OF PHYSICAL CHEMISTRY C
language English
format Article
description The Z-scheme heterostructure photocatalysts possess unique advantages compared with other heterostructures, primarily due to their capacity to effectively separate spatial carriers while maintaining strong redox capabilities. This study employs hybrid density functional theory calculations to examine the viability of As/PtSe2 heterostructures as a catalyst for a Z-scheme photocatalytic system. The findings indicate that the As/PtSe2 heterostructure exhibits type-II band alignments with a reduced band gap (E g) relative to its individual monolayers, high carrier mobility in the order of 103 to 104 cm2 V-1 s-1, and a robust built-in electric field of 0.38 V & Aring;-1, which improves visible light absorption and promotes the spatial separation of photogenerated carriers. Calculations also reveal that the As/PtSe2 heterostructure possesses energetic, dynamical, and thermal stabilities. In terms of performance as a light absorber, both mesoscopic and microscopic approaches yield power conversion efficiencies greater than 11%. Furthermore, under small external potential bias, the hydrogen evolution reaction and oxygen evolution reaction can be initiated spontaneously on distinct monolayers, resulting in a calculated solar energy to hydrogen efficiency based on two distinctive models that exceeds the 10% critical value for economic viability.
publisher AMER CHEMICAL SOC
issn 1932-7447
1932-7455
publishDate 2025
container_volume 129
container_issue 12
doi_str_mv 10.1021/acs.jpcc.5c00818
topic Chemistry; Science & Technology - Other Topics; Materials Science
topic_facet Chemistry; Science & Technology - Other Topics; Materials Science
accesstype
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url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001444227700001
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