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Photocorrosion of WO(3) Photoanodes in Different Electrolytes

[Image: see text] Photocorrosion of an n-type semiconductor is anticipated to be unfavorable if its decomposition potential is situated below its valence band-edge position. Tungsten trioxide (WO(3)) is generally considered as a stable photoanode for different photoelectrochemical (PEC) applications...

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Autores principales: Knöppel, Julius, Kormányos, Attila, Mayerhöfer, Britta, Hofer, André, Bierling, Markus, Bachmann, Julien, Thiele, Simon, Cherevko, Serhiy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9718310/
https://www.ncbi.nlm.nih.gov/pubmed/36855660
http://dx.doi.org/10.1021/acsphyschemau.1c00004
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author Knöppel, Julius
Kormányos, Attila
Mayerhöfer, Britta
Hofer, André
Bierling, Markus
Bachmann, Julien
Thiele, Simon
Cherevko, Serhiy
author_facet Knöppel, Julius
Kormányos, Attila
Mayerhöfer, Britta
Hofer, André
Bierling, Markus
Bachmann, Julien
Thiele, Simon
Cherevko, Serhiy
author_sort Knöppel, Julius
collection PubMed
description [Image: see text] Photocorrosion of an n-type semiconductor is anticipated to be unfavorable if its decomposition potential is situated below its valence band-edge position. Tungsten trioxide (WO(3)) is generally considered as a stable photoanode for different photoelectrochemical (PEC) applications. Such oversimplified considerations ignore reactions with electrolytes added to the solvent. Moreover, kinetic effects are neglected. The fallacy of such approaches has been demonstrated in our previous study dealing with WO(3) instability in H(2)SO(4). In this work, in order to understand parameters influencing WO(3) photocorrosion and to identify more suitable reaction environments, H(2)SO(4), HClO(4), HNO(3), CH(3)O(3)SH, as electrolytes are considered. Model WO(3) thin films are fabricated with a spray-coating process. Photoactivity of the samples is determined with a photoelectrochemical scanning flow cell. Photostability is measured in real time by coupling an inductively coupled plasma mass spectrometer to the scanning flow cell to determine the photoanode dissolution products. It is found that the photoactivity of the WO(3) films increases as HNO(3) < HClO(4) ≈ H(2)SO(4) < CH(3)O(3)SH, whereas the photostability exhibits the opposite trend. The differences observed in photocorrosion are explained considering stability of the electrolytes toward decomposition. This work demonstrates that electrolytes and their reactive intermediates clearly influence the photostability of photoelectrodes. Thus, the careful selection of the photoelectrode/electrolyte combination is of crucial importance in the design of a stable photoelectrochemical water-splitting device.
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spelling pubmed-97183102023-02-27 Photocorrosion of WO(3) Photoanodes in Different Electrolytes Knöppel, Julius Kormányos, Attila Mayerhöfer, Britta Hofer, André Bierling, Markus Bachmann, Julien Thiele, Simon Cherevko, Serhiy ACS Phys Chem Au [Image: see text] Photocorrosion of an n-type semiconductor is anticipated to be unfavorable if its decomposition potential is situated below its valence band-edge position. Tungsten trioxide (WO(3)) is generally considered as a stable photoanode for different photoelectrochemical (PEC) applications. Such oversimplified considerations ignore reactions with electrolytes added to the solvent. Moreover, kinetic effects are neglected. The fallacy of such approaches has been demonstrated in our previous study dealing with WO(3) instability in H(2)SO(4). In this work, in order to understand parameters influencing WO(3) photocorrosion and to identify more suitable reaction environments, H(2)SO(4), HClO(4), HNO(3), CH(3)O(3)SH, as electrolytes are considered. Model WO(3) thin films are fabricated with a spray-coating process. Photoactivity of the samples is determined with a photoelectrochemical scanning flow cell. Photostability is measured in real time by coupling an inductively coupled plasma mass spectrometer to the scanning flow cell to determine the photoanode dissolution products. It is found that the photoactivity of the WO(3) films increases as HNO(3) < HClO(4) ≈ H(2)SO(4) < CH(3)O(3)SH, whereas the photostability exhibits the opposite trend. The differences observed in photocorrosion are explained considering stability of the electrolytes toward decomposition. This work demonstrates that electrolytes and their reactive intermediates clearly influence the photostability of photoelectrodes. Thus, the careful selection of the photoelectrode/electrolyte combination is of crucial importance in the design of a stable photoelectrochemical water-splitting device. American Chemical Society 2021-05-19 /pmc/articles/PMC9718310/ /pubmed/36855660 http://dx.doi.org/10.1021/acsphyschemau.1c00004 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Knöppel, Julius
Kormányos, Attila
Mayerhöfer, Britta
Hofer, André
Bierling, Markus
Bachmann, Julien
Thiele, Simon
Cherevko, Serhiy
Photocorrosion of WO(3) Photoanodes in Different Electrolytes
title Photocorrosion of WO(3) Photoanodes in Different Electrolytes
title_full Photocorrosion of WO(3) Photoanodes in Different Electrolytes
title_fullStr Photocorrosion of WO(3) Photoanodes in Different Electrolytes
title_full_unstemmed Photocorrosion of WO(3) Photoanodes in Different Electrolytes
title_short Photocorrosion of WO(3) Photoanodes in Different Electrolytes
title_sort photocorrosion of wo(3) photoanodes in different electrolytes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9718310/
https://www.ncbi.nlm.nih.gov/pubmed/36855660
http://dx.doi.org/10.1021/acsphyschemau.1c00004
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