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Scaling up BiVO4 Photoanodes on Ti Porous Transport Layers for Solar Hydrogen Production

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Abstract
Commercialization of photoelectrochemical (PEC) water-splitting devices requires the development of large-area, low-cost photoanodes with high efficiency and photostability. Herein, we address these challenges by using scalable fabrication techniques and porous transport layer (PTLs) electrode supports. We demonstrate the deposition of W-doped BiVO4 on Ti PTLs using successive-ionic-layer-adsorption-and-reaction methods followed by boron treatment and chemical bath deposition of NiFeOOH co-catalyst. The use of PTLs that facilitate efficient mass and charge transfer, allowed the scaling of the photoanodes (100 cm2) while maintaining ~90% of the performance obtained with 1 cm2 photoanodes for oxygen evolution reaction i.e. 2.10 mA cm-2 at 1.23 V vs. RHE. This is the highest reported performance to date. Integration with a polycrystalline Si PV cell leads to bias-free water splitting with a stable photocurrent of 208 mA for 6 h and 2.2% solar-to-hydrogen efficiency. Our findings highlight the importance of photoelectrode design towards scalable PEC device development.
Year of Publication
2024
Journal
ChemSusChem
Volume
16
Issue
4
Number of Pages
e202300969
Date Published
01/2024
DOI
Dataset
PId
87f88b8bb0a6b5a261aad4d11d8907f1
Alternate Journal
ChemSusChem
Label
OA
Journal Article
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Citation
Kunturu, P. P., Lavorenti, M., Bera, S., Johnson, H., Kinge, S., van de Sanden, M. C. M., & Tsampas, M. N. (2024). Scaling up BiVO4 Photoanodes on Ti Porous Transport Layers for Solar Hydrogen Production. ChemSusChem, 16(4), e202300969. https://doi.org/10.1002/cssc.202300969 (Original work published 2024)