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Promising M(2)CO(2)/MoX(2) (M = Hf, Zr; X = S, Se, Te) Heterostructures for Multifunctional Solar Energy Applications

Two-dimensional van der Waals (vdW) heterostructures are potential candidates for clean energy conversion materials to address the global energy crisis and environmental issues. In this work, we have comprehensively studied the geometrical, electronic, and optical properties of M(2)CO(2)/MoX(2) (M =...

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Autores principales: Wen, Jiansen, Cai, Qi, Xiong, Rui, Cui, Zhou, Zhang, Yinggan, He, Zhihan, Liu, Junchao, Lin, Maohua, Wen, Cuilian, Wu, Bo, Sa, Baisheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10146659/
https://www.ncbi.nlm.nih.gov/pubmed/37110759
http://dx.doi.org/10.3390/molecules28083525
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author Wen, Jiansen
Cai, Qi
Xiong, Rui
Cui, Zhou
Zhang, Yinggan
He, Zhihan
Liu, Junchao
Lin, Maohua
Wen, Cuilian
Wu, Bo
Sa, Baisheng
author_facet Wen, Jiansen
Cai, Qi
Xiong, Rui
Cui, Zhou
Zhang, Yinggan
He, Zhihan
Liu, Junchao
Lin, Maohua
Wen, Cuilian
Wu, Bo
Sa, Baisheng
author_sort Wen, Jiansen
collection PubMed
description Two-dimensional van der Waals (vdW) heterostructures are potential candidates for clean energy conversion materials to address the global energy crisis and environmental issues. In this work, we have comprehensively studied the geometrical, electronic, and optical properties of M(2)CO(2)/MoX(2) (M = Hf, Zr; X = S, Se, Te) vdW heterostructures, as well as their applications in the fields of photocatalytic and photovoltaic using density functional theory calculations. The lattice dynamic and thermal stabilities of designed M(2)CO(2)/MoX(2) heterostructures are confirmed. Interestingly, all the M(2)CO(2)/MoX(2) heterostructures exhibit intrinsic type-II band structure features, which effectively inhibit the electron-hole pair recombination and enhance the photocatalytic performance. Furthermore, the internal built-in electric field and high anisotropic carrier mobility can separate the photo-generated carriers efficiently. It is noted that M(2)CO(2)/MoX(2) heterostructures exhibit suitable band gaps in comparison to the M(2)CO(2) and MoX(2) monolayers, which enhance the optical-harvesting abilities in the visible and ultraviolet light zones. Zr(2)CO(2)/MoSe(2) and Hf(2)CO(2)/MoSe(2) heterostructures possess suitable band edge positions to provide the competent driving force for water splitting as photocatalysts. In addition, Hf(2)CO(2)/MoS(2) and Zr(2)CO(2)/MoS(2) heterostructures deliver a power conversion efficiency of 19.75% and 17.13% for solar cell applications, respectively. These results pave the way for exploring efficient MXenes/TMDCs vdW heterostructures as photocatalytic and photovoltaic materials.
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spelling pubmed-101466592023-04-29 Promising M(2)CO(2)/MoX(2) (M = Hf, Zr; X = S, Se, Te) Heterostructures for Multifunctional Solar Energy Applications Wen, Jiansen Cai, Qi Xiong, Rui Cui, Zhou Zhang, Yinggan He, Zhihan Liu, Junchao Lin, Maohua Wen, Cuilian Wu, Bo Sa, Baisheng Molecules Article Two-dimensional van der Waals (vdW) heterostructures are potential candidates for clean energy conversion materials to address the global energy crisis and environmental issues. In this work, we have comprehensively studied the geometrical, electronic, and optical properties of M(2)CO(2)/MoX(2) (M = Hf, Zr; X = S, Se, Te) vdW heterostructures, as well as their applications in the fields of photocatalytic and photovoltaic using density functional theory calculations. The lattice dynamic and thermal stabilities of designed M(2)CO(2)/MoX(2) heterostructures are confirmed. Interestingly, all the M(2)CO(2)/MoX(2) heterostructures exhibit intrinsic type-II band structure features, which effectively inhibit the electron-hole pair recombination and enhance the photocatalytic performance. Furthermore, the internal built-in electric field and high anisotropic carrier mobility can separate the photo-generated carriers efficiently. It is noted that M(2)CO(2)/MoX(2) heterostructures exhibit suitable band gaps in comparison to the M(2)CO(2) and MoX(2) monolayers, which enhance the optical-harvesting abilities in the visible and ultraviolet light zones. Zr(2)CO(2)/MoSe(2) and Hf(2)CO(2)/MoSe(2) heterostructures possess suitable band edge positions to provide the competent driving force for water splitting as photocatalysts. In addition, Hf(2)CO(2)/MoS(2) and Zr(2)CO(2)/MoS(2) heterostructures deliver a power conversion efficiency of 19.75% and 17.13% for solar cell applications, respectively. These results pave the way for exploring efficient MXenes/TMDCs vdW heterostructures as photocatalytic and photovoltaic materials. MDPI 2023-04-17 /pmc/articles/PMC10146659/ /pubmed/37110759 http://dx.doi.org/10.3390/molecules28083525 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wen, Jiansen
Cai, Qi
Xiong, Rui
Cui, Zhou
Zhang, Yinggan
He, Zhihan
Liu, Junchao
Lin, Maohua
Wen, Cuilian
Wu, Bo
Sa, Baisheng
Promising M(2)CO(2)/MoX(2) (M = Hf, Zr; X = S, Se, Te) Heterostructures for Multifunctional Solar Energy Applications
title Promising M(2)CO(2)/MoX(2) (M = Hf, Zr; X = S, Se, Te) Heterostructures for Multifunctional Solar Energy Applications
title_full Promising M(2)CO(2)/MoX(2) (M = Hf, Zr; X = S, Se, Te) Heterostructures for Multifunctional Solar Energy Applications
title_fullStr Promising M(2)CO(2)/MoX(2) (M = Hf, Zr; X = S, Se, Te) Heterostructures for Multifunctional Solar Energy Applications
title_full_unstemmed Promising M(2)CO(2)/MoX(2) (M = Hf, Zr; X = S, Se, Te) Heterostructures for Multifunctional Solar Energy Applications
title_short Promising M(2)CO(2)/MoX(2) (M = Hf, Zr; X = S, Se, Te) Heterostructures for Multifunctional Solar Energy Applications
title_sort promising m(2)co(2)/mox(2) (m = hf, zr; x = s, se, te) heterostructures for multifunctional solar energy applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10146659/
https://www.ncbi.nlm.nih.gov/pubmed/37110759
http://dx.doi.org/10.3390/molecules28083525
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