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Electronic and optical properties of Janus ZrSSe by density functional theory

In the present work, we investigate systematically the electronic and optical properties of Janus ZrSSe using first-principles calculations. Our calculations demonstrate that the Janus ZrSSe monolayer is an indirect semiconductor at equilibrium. The band gap of the Janus ZrSSe is 1.341 eV using the...

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Autores principales: Vu, Tuan V., Tong, Hien D., Tran, Duy Phu, Binh, Nguyen T. T., Nguyen, Chuong V., Phuc, Huynh V., Do, Hoat M., Hieu, Nguyen N.
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/PMC9076358/
https://www.ncbi.nlm.nih.gov/pubmed/35540071
http://dx.doi.org/10.1039/c9ra08605f
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author Vu, Tuan V.
Tong, Hien D.
Tran, Duy Phu
Binh, Nguyen T. T.
Nguyen, Chuong V.
Phuc, Huynh V.
Do, Hoat M.
Hieu, Nguyen N.
author_facet Vu, Tuan V.
Tong, Hien D.
Tran, Duy Phu
Binh, Nguyen T. T.
Nguyen, Chuong V.
Phuc, Huynh V.
Do, Hoat M.
Hieu, Nguyen N.
author_sort Vu, Tuan V.
collection PubMed
description In the present work, we investigate systematically the electronic and optical properties of Janus ZrSSe using first-principles calculations. Our calculations demonstrate that the Janus ZrSSe monolayer is an indirect semiconductor at equilibrium. The band gap of the Janus ZrSSe is 1.341 eV using the Heyd–Scuseria–Ernzerhof hybrid functional, larger than the band gap of ZrSe(2) monolayer and smaller than that of ZrS(2) monolayer. Based on the analysis of the band edge alignment, we confirm that the Janus ZrSSe monolayer possesses photocatalytic activities that can be used in water splitting applications. While strain engineering plays an important role in modulating the electronic properties and optical characteristics of the Janus ZrSSe monolayer, the influence of the external electric field on these properties is negligible. The biaxial strain, ε(b), has significantly changed the band of the Janus ZrSSe monolayer, and particularly, the semiconductor–metal phase transition which occurred at ε(b) = 7%. The Janus ZrSSe monolayer can absorb light in both visible and ultraviolet regions. Also, the biaxial strain has shifted the first optical gap of the Janus ZrSSe monolayer. Our findings provide additional information for the prospect of applying the Janus ZrSSe monolayer in nanoelectronic devices, especially in water splitting technology.
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spelling pubmed-90763582022-05-09 Electronic and optical properties of Janus ZrSSe by density functional theory Vu, Tuan V. Tong, Hien D. Tran, Duy Phu Binh, Nguyen T. T. Nguyen, Chuong V. Phuc, Huynh V. Do, Hoat M. Hieu, Nguyen N. RSC Adv Chemistry In the present work, we investigate systematically the electronic and optical properties of Janus ZrSSe using first-principles calculations. Our calculations demonstrate that the Janus ZrSSe monolayer is an indirect semiconductor at equilibrium. The band gap of the Janus ZrSSe is 1.341 eV using the Heyd–Scuseria–Ernzerhof hybrid functional, larger than the band gap of ZrSe(2) monolayer and smaller than that of ZrS(2) monolayer. Based on the analysis of the band edge alignment, we confirm that the Janus ZrSSe monolayer possesses photocatalytic activities that can be used in water splitting applications. While strain engineering plays an important role in modulating the electronic properties and optical characteristics of the Janus ZrSSe monolayer, the influence of the external electric field on these properties is negligible. The biaxial strain, ε(b), has significantly changed the band of the Janus ZrSSe monolayer, and particularly, the semiconductor–metal phase transition which occurred at ε(b) = 7%. The Janus ZrSSe monolayer can absorb light in both visible and ultraviolet regions. Also, the biaxial strain has shifted the first optical gap of the Janus ZrSSe monolayer. Our findings provide additional information for the prospect of applying the Janus ZrSSe monolayer in nanoelectronic devices, especially in water splitting technology. The Royal Society of Chemistry 2019-12-12 /pmc/articles/PMC9076358/ /pubmed/35540071 http://dx.doi.org/10.1039/c9ra08605f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Vu, Tuan V.
Tong, Hien D.
Tran, Duy Phu
Binh, Nguyen T. T.
Nguyen, Chuong V.
Phuc, Huynh V.
Do, Hoat M.
Hieu, Nguyen N.
Electronic and optical properties of Janus ZrSSe by density functional theory
title Electronic and optical properties of Janus ZrSSe by density functional theory
title_full Electronic and optical properties of Janus ZrSSe by density functional theory
title_fullStr Electronic and optical properties of Janus ZrSSe by density functional theory
title_full_unstemmed Electronic and optical properties of Janus ZrSSe by density functional theory
title_short Electronic and optical properties of Janus ZrSSe by density functional theory
title_sort electronic and optical properties of janus zrsse by density functional theory
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076358/
https://www.ncbi.nlm.nih.gov/pubmed/35540071
http://dx.doi.org/10.1039/c9ra08605f
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