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First-principles investigation of a type-II BP/Sc(2)CF(2) van der Waals heterostructure for photovoltaic solar cells

Constructing heterostructures has proven to be an effective strategy to manipulate the electronic properties and enlarge the application possibilities of two-dimensional (2D) materials. In this work, we perform first-principles calculations to generate the heterostructure between boron phosphide (BP...

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Autores principales: Khang, Nguyen Dang, Nguyen, Cuong Q., Duc, Le M., Nguyen, Chuong V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10153482/
https://www.ncbi.nlm.nih.gov/pubmed/37143808
http://dx.doi.org/10.1039/d3na00082f
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author Khang, Nguyen Dang
Nguyen, Cuong Q.
Duc, Le M.
Nguyen, Chuong V.
author_facet Khang, Nguyen Dang
Nguyen, Cuong Q.
Duc, Le M.
Nguyen, Chuong V.
author_sort Khang, Nguyen Dang
collection PubMed
description Constructing heterostructures has proven to be an effective strategy to manipulate the electronic properties and enlarge the application possibilities of two-dimensional (2D) materials. In this work, we perform first-principles calculations to generate the heterostructure between boron phosphide (BP) and Sc(2)CF(2) materials. The electronic characteristics and band alignment of the combined BP/Sc(2)CF(2) heterostructure, as well as the effects of an applied electric field and interlayer coupling, are examined. Our results predict that the BP/Sc(2)CF(2) heterostructure is energetically, thermally and dynamically stable. All considered stacking patterns of the BP/Sc(2)CF(2) heterostructure possess semiconducting behavior. Furthermore, the formation of the BP/Sc(2)CF(2) heterostructure gives rise to the generation of type-II band alignment, which causes photogenerated electrons and holes to move in opposite ways. Therefore, the type-II BP/Sc(2)CF(2) heterostructure could be a promising candidate for photovoltaic solar cells. More interestingly, the electronic properties and band alignment in the BP/Sc(2)CF(2) heterostructure can be tuned by applying an electric field and modifying the interlayer coupling. Applying an electric field not only causes modulation of the band gap, but also leads to the transition from a semiconductor to a gapless semiconductor and from type-II to type-I band alignment of the BP/Sc(2)CF(2) heterostructure. In addition, changing the interlayer coupling gives rise to modulation of the band gap of the BP/Sc(2)CF(2) heterostructure. Our findings suggest that the BP/Sc(2)CF(2) heterostructure is a promising candidate for photovoltaic solar cells.
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spelling pubmed-101534822023-05-03 First-principles investigation of a type-II BP/Sc(2)CF(2) van der Waals heterostructure for photovoltaic solar cells Khang, Nguyen Dang Nguyen, Cuong Q. Duc, Le M. Nguyen, Chuong V. Nanoscale Adv Chemistry Constructing heterostructures has proven to be an effective strategy to manipulate the electronic properties and enlarge the application possibilities of two-dimensional (2D) materials. In this work, we perform first-principles calculations to generate the heterostructure between boron phosphide (BP) and Sc(2)CF(2) materials. The electronic characteristics and band alignment of the combined BP/Sc(2)CF(2) heterostructure, as well as the effects of an applied electric field and interlayer coupling, are examined. Our results predict that the BP/Sc(2)CF(2) heterostructure is energetically, thermally and dynamically stable. All considered stacking patterns of the BP/Sc(2)CF(2) heterostructure possess semiconducting behavior. Furthermore, the formation of the BP/Sc(2)CF(2) heterostructure gives rise to the generation of type-II band alignment, which causes photogenerated electrons and holes to move in opposite ways. Therefore, the type-II BP/Sc(2)CF(2) heterostructure could be a promising candidate for photovoltaic solar cells. More interestingly, the electronic properties and band alignment in the BP/Sc(2)CF(2) heterostructure can be tuned by applying an electric field and modifying the interlayer coupling. Applying an electric field not only causes modulation of the band gap, but also leads to the transition from a semiconductor to a gapless semiconductor and from type-II to type-I band alignment of the BP/Sc(2)CF(2) heterostructure. In addition, changing the interlayer coupling gives rise to modulation of the band gap of the BP/Sc(2)CF(2) heterostructure. Our findings suggest that the BP/Sc(2)CF(2) heterostructure is a promising candidate for photovoltaic solar cells. RSC 2023-03-28 /pmc/articles/PMC10153482/ /pubmed/37143808 http://dx.doi.org/10.1039/d3na00082f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Khang, Nguyen Dang
Nguyen, Cuong Q.
Duc, Le M.
Nguyen, Chuong V.
First-principles investigation of a type-II BP/Sc(2)CF(2) van der Waals heterostructure for photovoltaic solar cells
title First-principles investigation of a type-II BP/Sc(2)CF(2) van der Waals heterostructure for photovoltaic solar cells
title_full First-principles investigation of a type-II BP/Sc(2)CF(2) van der Waals heterostructure for photovoltaic solar cells
title_fullStr First-principles investigation of a type-II BP/Sc(2)CF(2) van der Waals heterostructure for photovoltaic solar cells
title_full_unstemmed First-principles investigation of a type-II BP/Sc(2)CF(2) van der Waals heterostructure for photovoltaic solar cells
title_short First-principles investigation of a type-II BP/Sc(2)CF(2) van der Waals heterostructure for photovoltaic solar cells
title_sort first-principles investigation of a type-ii bp/sc(2)cf(2) van der waals heterostructure for photovoltaic solar cells
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10153482/
https://www.ncbi.nlm.nih.gov/pubmed/37143808
http://dx.doi.org/10.1039/d3na00082f
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