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Bismuth Vanadate and 3D Graphene Composite Photoanodes for Enhanced Photoelectrochemical Oxidation of Water

[Image: see text] Bismuth vanadate (BiVO(4)) has been one of the most promising photoanodes for the photoelectrochemical (PEC) water oxidation process. Efforts are still on to overcome the drawbacks of this photoanode to enhance the catalytic efficiency and improve the stability. In the present work...

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Autores principales: Sharma, Abhishek, Manna, Sudipa, Kumar, Sriram, Satpati, Ashis Kumar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10515188/
https://www.ncbi.nlm.nih.gov/pubmed/37744824
http://dx.doi.org/10.1021/acsomega.3c03229
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author Sharma, Abhishek
Manna, Sudipa
Kumar, Sriram
Satpati, Ashis Kumar
author_facet Sharma, Abhishek
Manna, Sudipa
Kumar, Sriram
Satpati, Ashis Kumar
author_sort Sharma, Abhishek
collection PubMed
description [Image: see text] Bismuth vanadate (BiVO(4)) has been one of the most promising photoanodes for the photoelectrochemical (PEC) water oxidation process. Efforts are still on to overcome the drawbacks of this photoanode to enhance the catalytic efficiency and improve the stability. In the present work, three-dimensional graphene (3D-G) was incorporated inside the BiVO(4) matrix, primarily to improve the conductivity of the material. The photoanodes are fabricated with the incorporation of a SnO(2) heterojunction and application of cobalt borate (Co–B(i)) as a cocatalyst. The incorporation of 3D-G has enhanced the photocurrent from 0.72 o 1.21 mA cm(–2) in ITO/SnO(2)/BiVO(4) and ITO/SnO(2)/3D-G-BiVO(4) materials; the photocurrent has been improved from 0.89 to 1.52 mA cm(–2) in ITO/SnO(2)/BiVO(4)/Co–B(i) and ITO/SnO(2)/3D-G-BiVO(4). Semiconductor properties are evaluated from the Mott–Schottky measurements, and the charge transfer and transport kinetics of the PEC process are measured from several photoelectrochemical investigations. Both the charge transport and the charge transfer efficiencies are enhanced upon inclusion of 3D-G into the catalyst system. The lifetime of the charge carrier is observed to be increased. The decrease in the decay kinetics of the holes, enhancement in the open-circuit photovoltage (OCPV), and the resulting modulation of the surface states are responsible for the enhancement in the surface charge transfer process due to the inclusion of 3D-G into the catalytic system. Therefore, the additional role of 3D-G in the modulation of the surface states and release of the Fermi level pinning has made the band alignment between the semiconductor and the analyte better, which resulted in enhanced catalytic performance in the photoelectrochemical oxidation of water.
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spelling pubmed-105151882023-09-23 Bismuth Vanadate and 3D Graphene Composite Photoanodes for Enhanced Photoelectrochemical Oxidation of Water Sharma, Abhishek Manna, Sudipa Kumar, Sriram Satpati, Ashis Kumar ACS Omega [Image: see text] Bismuth vanadate (BiVO(4)) has been one of the most promising photoanodes for the photoelectrochemical (PEC) water oxidation process. Efforts are still on to overcome the drawbacks of this photoanode to enhance the catalytic efficiency and improve the stability. In the present work, three-dimensional graphene (3D-G) was incorporated inside the BiVO(4) matrix, primarily to improve the conductivity of the material. The photoanodes are fabricated with the incorporation of a SnO(2) heterojunction and application of cobalt borate (Co–B(i)) as a cocatalyst. The incorporation of 3D-G has enhanced the photocurrent from 0.72 o 1.21 mA cm(–2) in ITO/SnO(2)/BiVO(4) and ITO/SnO(2)/3D-G-BiVO(4) materials; the photocurrent has been improved from 0.89 to 1.52 mA cm(–2) in ITO/SnO(2)/BiVO(4)/Co–B(i) and ITO/SnO(2)/3D-G-BiVO(4). Semiconductor properties are evaluated from the Mott–Schottky measurements, and the charge transfer and transport kinetics of the PEC process are measured from several photoelectrochemical investigations. Both the charge transport and the charge transfer efficiencies are enhanced upon inclusion of 3D-G into the catalyst system. The lifetime of the charge carrier is observed to be increased. The decrease in the decay kinetics of the holes, enhancement in the open-circuit photovoltage (OCPV), and the resulting modulation of the surface states are responsible for the enhancement in the surface charge transfer process due to the inclusion of 3D-G into the catalytic system. Therefore, the additional role of 3D-G in the modulation of the surface states and release of the Fermi level pinning has made the band alignment between the semiconductor and the analyte better, which resulted in enhanced catalytic performance in the photoelectrochemical oxidation of water. American Chemical Society 2023-09-09 /pmc/articles/PMC10515188/ /pubmed/37744824 http://dx.doi.org/10.1021/acsomega.3c03229 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Sharma, Abhishek
Manna, Sudipa
Kumar, Sriram
Satpati, Ashis Kumar
Bismuth Vanadate and 3D Graphene Composite Photoanodes for Enhanced Photoelectrochemical Oxidation of Water
title Bismuth Vanadate and 3D Graphene Composite Photoanodes for Enhanced Photoelectrochemical Oxidation of Water
title_full Bismuth Vanadate and 3D Graphene Composite Photoanodes for Enhanced Photoelectrochemical Oxidation of Water
title_fullStr Bismuth Vanadate and 3D Graphene Composite Photoanodes for Enhanced Photoelectrochemical Oxidation of Water
title_full_unstemmed Bismuth Vanadate and 3D Graphene Composite Photoanodes for Enhanced Photoelectrochemical Oxidation of Water
title_short Bismuth Vanadate and 3D Graphene Composite Photoanodes for Enhanced Photoelectrochemical Oxidation of Water
title_sort bismuth vanadate and 3d graphene composite photoanodes for enhanced photoelectrochemical oxidation of water
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10515188/
https://www.ncbi.nlm.nih.gov/pubmed/37744824
http://dx.doi.org/10.1021/acsomega.3c03229
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