Boosting the Performance of BiVO Photoanodes by the Simultaneous Introduction of Oxygen Vacancies and Cocatalyst via Photoelectrodeposition.

ACS Appl Mater Interfaces

Beijing National Laboratory for Molecular Sciences, College of Chemistry, Peking University, Beijing 100871, China.

Published: August 2022

Photoelectrochemical (PEC) water splitting is a promising way to convert solar energy into hydrogen energy, but the efficiency is limited by severe charge recombination especially in photoanodes. Herein, to reduce the charge recombination in the bulk phase and at the surface of the BiVO photoanodes, oxygen vacancy introduction and cocatalyst loading were realized simultaneously by one-step photocathode deposition. A unique re-BiVO/FeOOH photoanode was obtained by the photocathodic reduction of BiVO in an electrolyte containing Fe, where the oxygen vacancies were introduced during the reduction process and the deposition of the FeOOH cocatalyst on the surface was induced by the generated OH. When used for PEC water oxidation, the obtained re-BiVO/FeOOH photoanode achieved an excellent PEC performance with a photocurrent density of 5.35 mA/cm at 1.23 V versus RHE under AM 1.5G illumination, which was considerably higher than those for the pristine BiVO photoanode (2.88 mA/cm) and the re-BiVO photoanode obtained by photocathodic reduction without Fe (4.32 mA/cm). After further modification with a cobalt silicate (Co-Sil) cocatalyst, the resultant re-BiVO/FeOOH/Co-Sil photoanode exhibited a photocurrent density as high as 6.10 mA/cm at 1.23 V versus RHE and a remarkable applied bias photon-to-current efficiency of 2.25%. The outstanding performance of the re-BiVO/FeOOH/Co-Sil photoanode could be attributed to the coexistence of plenty of oxygen vacancies in BiVO reducing recombination of photogenerated carriers, the FeOOH cocatalyst interlayer as a hole-transport layer, and the outer Co-Sil cocatalyst with a high activity toward oxygen evolution. This work may open a new avenue toward multifunctional modifications of photoanode systems for efficient solar conversion.

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Source
http://dx.doi.org/10.1021/acsami.2c10741DOI Listing

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