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Investigation of structural, electronic and optical properties of two-dimensional MoS(2)-doped-V(2)O(5) composites for photocatalytic application: a density functional theory study

In the present research, the structural, electronic and optical properties of transition metal dichalcogenide-doped transition metal oxides MoS(2)-doped-V(2)O(5) with various doping concentrations (x = 1–3%) of MoS(2) atoms are studied by using first principles calculation. The generalized gradient...

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Autores principales: Jameel, Muhammad Hasnain, Sufi bin Roslan, Muhammad, Bin Mayzan, Mohd Zul Hilmi, Agam, Mohd Arif Bin, Zaki, Zaki I., Fallatah, Ahmed M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10354480/
https://www.ncbi.nlm.nih.gov/pubmed/37476508
http://dx.doi.org/10.1098/rsos.230503
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author Jameel, Muhammad Hasnain
Sufi bin Roslan, Muhammad
Bin Mayzan, Mohd Zul Hilmi
Agam, Mohd Arif Bin
Zaki, Zaki I.
Fallatah, Ahmed M.
author_facet Jameel, Muhammad Hasnain
Sufi bin Roslan, Muhammad
Bin Mayzan, Mohd Zul Hilmi
Agam, Mohd Arif Bin
Zaki, Zaki I.
Fallatah, Ahmed M.
author_sort Jameel, Muhammad Hasnain
collection PubMed
description In the present research, the structural, electronic and optical properties of transition metal dichalcogenide-doped transition metal oxides MoS(2)-doped-V(2)O(5) with various doping concentrations (x = 1–3%) of MoS(2) atoms are studied by using first principles calculation. The generalized gradient approximation Perdew–Burke–Ernzerhof simulation approach is used to investigate the energy bandgap (E(g)) of orthorhombic structures. We examined the energy bandgap (E(g)) decrement from 2.76 to 1.30 eV with various doping (x = 1–3%) of molybdenum disulfide (MoS(2)) atoms. The bandgap nature shows that the material is a well-known direct bandgap semiconductor. MoS(2) doping (x = 1–3%) atoms in pentoxide (V(2)O(5)) creates the extra gamma active states which contribute to the formation of conduction and valance bands. MoS(2)-doped-V(2)O(5) composite is a proficient photocatalyst, has a large surface area for absorption of light, decreases the electron-hole pairs recombination rate and increases the charge transport. A comprehensive study of optical conductivity reveals that strong peaks of MoS(2)-doped-V(2)O(5) increase in ultraviolet spectrum region with small shifts at larger energy bands through increment doping x = 1–3% atoms of MoS(2). A significant decrement was found in the reflectivity due to the decrement in the bandgap with doping. The optical properties significantly increased by the decrement of bandgap (E(g)). Two-dimensional MoS(2)-doped-V(2)O(5) composite has high energy absorption, optical conductivity and refractive index, and is an appropriate material for photocatalytic applications.
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spelling pubmed-103544802023-07-20 Investigation of structural, electronic and optical properties of two-dimensional MoS(2)-doped-V(2)O(5) composites for photocatalytic application: a density functional theory study Jameel, Muhammad Hasnain Sufi bin Roslan, Muhammad Bin Mayzan, Mohd Zul Hilmi Agam, Mohd Arif Bin Zaki, Zaki I. Fallatah, Ahmed M. R Soc Open Sci Chemistry In the present research, the structural, electronic and optical properties of transition metal dichalcogenide-doped transition metal oxides MoS(2)-doped-V(2)O(5) with various doping concentrations (x = 1–3%) of MoS(2) atoms are studied by using first principles calculation. The generalized gradient approximation Perdew–Burke–Ernzerhof simulation approach is used to investigate the energy bandgap (E(g)) of orthorhombic structures. We examined the energy bandgap (E(g)) decrement from 2.76 to 1.30 eV with various doping (x = 1–3%) of molybdenum disulfide (MoS(2)) atoms. The bandgap nature shows that the material is a well-known direct bandgap semiconductor. MoS(2) doping (x = 1–3%) atoms in pentoxide (V(2)O(5)) creates the extra gamma active states which contribute to the formation of conduction and valance bands. MoS(2)-doped-V(2)O(5) composite is a proficient photocatalyst, has a large surface area for absorption of light, decreases the electron-hole pairs recombination rate and increases the charge transport. A comprehensive study of optical conductivity reveals that strong peaks of MoS(2)-doped-V(2)O(5) increase in ultraviolet spectrum region with small shifts at larger energy bands through increment doping x = 1–3% atoms of MoS(2). A significant decrement was found in the reflectivity due to the decrement in the bandgap with doping. The optical properties significantly increased by the decrement of bandgap (E(g)). Two-dimensional MoS(2)-doped-V(2)O(5) composite has high energy absorption, optical conductivity and refractive index, and is an appropriate material for photocatalytic applications. The Royal Society 2023-07-19 /pmc/articles/PMC10354480/ /pubmed/37476508 http://dx.doi.org/10.1098/rsos.230503 Text en © 2023 The Authors. https://creativecommons.org/licenses/by/4.0/Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, provided the original author and source are credited.
spellingShingle Chemistry
Jameel, Muhammad Hasnain
Sufi bin Roslan, Muhammad
Bin Mayzan, Mohd Zul Hilmi
Agam, Mohd Arif Bin
Zaki, Zaki I.
Fallatah, Ahmed M.
Investigation of structural, electronic and optical properties of two-dimensional MoS(2)-doped-V(2)O(5) composites for photocatalytic application: a density functional theory study
title Investigation of structural, electronic and optical properties of two-dimensional MoS(2)-doped-V(2)O(5) composites for photocatalytic application: a density functional theory study
title_full Investigation of structural, electronic and optical properties of two-dimensional MoS(2)-doped-V(2)O(5) composites for photocatalytic application: a density functional theory study
title_fullStr Investigation of structural, electronic and optical properties of two-dimensional MoS(2)-doped-V(2)O(5) composites for photocatalytic application: a density functional theory study
title_full_unstemmed Investigation of structural, electronic and optical properties of two-dimensional MoS(2)-doped-V(2)O(5) composites for photocatalytic application: a density functional theory study
title_short Investigation of structural, electronic and optical properties of two-dimensional MoS(2)-doped-V(2)O(5) composites for photocatalytic application: a density functional theory study
title_sort investigation of structural, electronic and optical properties of two-dimensional mos(2)-doped-v(2)o(5) composites for photocatalytic application: a density functional theory study
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10354480/
https://www.ncbi.nlm.nih.gov/pubmed/37476508
http://dx.doi.org/10.1098/rsos.230503
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