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Type-I band alignment of BX–ZnO (X = As, P) van der Waals heterostructures as high-efficiency water splitting photocatalysts: a first-principles study

In this work, we perform first-principles calculations to examine the electronic, optical and photocatalytic properties of the BX–ZnO (X = As, P) heterostructures. The interlayer distance and binding energy of the most energetically favorable stacking configuration are 3.31 Å and −0.30 eV for the BA...

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Autores principales: Do, Thi-Nga, Idrees, M., Binh, Nguyen T. T., Phuc, Huynh V., Hieu, Nguyen N., Hoa, Le T., Amin, Bin, Van, Hieu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9058505/
https://www.ncbi.nlm.nih.gov/pubmed/35517160
http://dx.doi.org/10.1039/d0ra09701b
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author Do, Thi-Nga
Idrees, M.
Binh, Nguyen T. T.
Phuc, Huynh V.
Hieu, Nguyen N.
Hoa, Le T.
Amin, Bin
Van, Hieu
author_facet Do, Thi-Nga
Idrees, M.
Binh, Nguyen T. T.
Phuc, Huynh V.
Hieu, Nguyen N.
Hoa, Le T.
Amin, Bin
Van, Hieu
author_sort Do, Thi-Nga
collection PubMed
description In this work, we perform first-principles calculations to examine the electronic, optical and photocatalytic properties of the BX–ZnO (X = As, P) heterostructures. The interlayer distance and binding energy of the most energetically favorable stacking configuration are 3.31 Å and −0.30 eV for the BAs–ZnO heterostructure and 3.30 Å and −0.25 eV for the BP–ZnO heterostructure. All the stacking patterns of the BX–ZnO heterostructures are proved to have thermal stability by performing AIMD simulations. The BAs–ZnO and BP–ZnO heterostructures are semiconductors with direct band gaps of 1.43 eV and 2.35 eV, respectively, and they exhibit type-I band alignment, which make them suitable for light emission applications with the ultra-fast recombination between electrons and holes. Both the BAs–ZnO and BP–ZnO heterostructures can exhibit a wider optical absorption range for visible-light owing to their reduced band gaps compared with the isolated BAs, BP and ZnO monolayers. The band alignment of both the BAs–ZnO and BP–ZnO heterostructures can straddle the water redox potential and they would have better performances owing to the direct band gap and the reduced band gap. All these findings demonstrate that the BX–ZnO heterostructures can be considered as potential photocatalysts for water splitting.
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spelling pubmed-90585052022-05-04 Type-I band alignment of BX–ZnO (X = As, P) van der Waals heterostructures as high-efficiency water splitting photocatalysts: a first-principles study Do, Thi-Nga Idrees, M. Binh, Nguyen T. T. Phuc, Huynh V. Hieu, Nguyen N. Hoa, Le T. Amin, Bin Van, Hieu RSC Adv Chemistry In this work, we perform first-principles calculations to examine the electronic, optical and photocatalytic properties of the BX–ZnO (X = As, P) heterostructures. The interlayer distance and binding energy of the most energetically favorable stacking configuration are 3.31 Å and −0.30 eV for the BAs–ZnO heterostructure and 3.30 Å and −0.25 eV for the BP–ZnO heterostructure. All the stacking patterns of the BX–ZnO heterostructures are proved to have thermal stability by performing AIMD simulations. The BAs–ZnO and BP–ZnO heterostructures are semiconductors with direct band gaps of 1.43 eV and 2.35 eV, respectively, and they exhibit type-I band alignment, which make them suitable for light emission applications with the ultra-fast recombination between electrons and holes. Both the BAs–ZnO and BP–ZnO heterostructures can exhibit a wider optical absorption range for visible-light owing to their reduced band gaps compared with the isolated BAs, BP and ZnO monolayers. The band alignment of both the BAs–ZnO and BP–ZnO heterostructures can straddle the water redox potential and they would have better performances owing to the direct band gap and the reduced band gap. All these findings demonstrate that the BX–ZnO heterostructures can be considered as potential photocatalysts for water splitting. The Royal Society of Chemistry 2020-12-17 /pmc/articles/PMC9058505/ /pubmed/35517160 http://dx.doi.org/10.1039/d0ra09701b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Do, Thi-Nga
Idrees, M.
Binh, Nguyen T. T.
Phuc, Huynh V.
Hieu, Nguyen N.
Hoa, Le T.
Amin, Bin
Van, Hieu
Type-I band alignment of BX–ZnO (X = As, P) van der Waals heterostructures as high-efficiency water splitting photocatalysts: a first-principles study
title Type-I band alignment of BX–ZnO (X = As, P) van der Waals heterostructures as high-efficiency water splitting photocatalysts: a first-principles study
title_full Type-I band alignment of BX–ZnO (X = As, P) van der Waals heterostructures as high-efficiency water splitting photocatalysts: a first-principles study
title_fullStr Type-I band alignment of BX–ZnO (X = As, P) van der Waals heterostructures as high-efficiency water splitting photocatalysts: a first-principles study
title_full_unstemmed Type-I band alignment of BX–ZnO (X = As, P) van der Waals heterostructures as high-efficiency water splitting photocatalysts: a first-principles study
title_short Type-I band alignment of BX–ZnO (X = As, P) van der Waals heterostructures as high-efficiency water splitting photocatalysts: a first-principles study
title_sort type-i band alignment of bx–zno (x = as, p) van der waals heterostructures as high-efficiency water splitting photocatalysts: a first-principles study
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9058505/
https://www.ncbi.nlm.nih.gov/pubmed/35517160
http://dx.doi.org/10.1039/d0ra09701b
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