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Water Oxidation and Degradation Mechanisms of BiVO 4 Photoanodes in Bicarbonate Electrolytes

Title: Water Oxidation and Degradation Mechanisms of BiVO 4 Photoanodes in Bicarbonate Electrolytes
Authors: Guanda Zhou; Clara C. Aletsee; Anna Lemperle; Tim Rieth; Lucia Mengel; Jianyong Gao; Martin Tschurl; Ueli Heiz; Ian D. Sharp
Publication Year: 2025
Collection: The University of Auckland: Figshare
Subject Terms: Biophysics; Biochemistry; Medicine; Microbiology; Genetics; Molecular Biology; Physiology; Evolutionary Biology; Immunology; Infectious Diseases; Space Science; Chemical Sciences not elsewhere classified; rapid hole extraction; gradual chemical attack; environmentally friendly approach; attracted increasing attention; though ph swings; highly efficient mediator; oxygen evolution reaction; near complete suppression; 4
Description: The photoelectrochemical hydrogen peroxide evolution reaction (HPER) has attracted increasing attention as an environmentally friendly approach to generate a commercially and industrially valuable water oxidation product. BiVO 4 photoanodes operated in bicarbonate-containing electrolytes have been shown to offer remarkable performance characteristics for HPER, with HCO 3 – serving as a reaction mediator. However, the factors affecting the stability of both the semiconductor photoanode and the aqueous electrolyte remain poorly understood. Here, we investigated BiVO 4 photoanodes to quantitatively assess the roles of electrolyte composition, bias potential, and illumination on competitive reaction pathways associated with HPER, oxygen evolution reaction, and photocorrosion. Our results confirm that HCO 3 – serves as a highly efficient mediator, leading to rapid hole extraction and near complete suppression of interfacial recombination on BiVO 4 . In addition, these favorable hole transfer kinetics significantly decrease the rate of photocorrosion, leading to dramatically enhanced stability compared to bicarbonate-free electrolytes. While the elevated pH of unbuffered bicarbonate electrolyte leads to gradual chemical attack of BiVO 4 , the stability is greatly enhanced in near-neutral buffered bicarbonate electrolytes. Finally, we confirm that HCO 3 – is regenerated during the photoanodic reaction, though pH swings during operation in an unbuffered electrolyte can lead to electrolyte instabilities. Overall, we find that BiVO 4 photoanodes operating in buffered bicarbonate-containing solutions exhibit significantly enhanced stability and can efficiently drive water oxidation reactions, including HPER, thus providing a route to robust production of high value oxidation products.
Document Type: article in journal/newspaper
Language: unknown
Relation: https://figshare.com/articles/journal_contribution/Water_Oxidation_and_Degradation_Mechanisms_of_BiVO_sub_4_sub_Photoanodes_in_Bicarbonate_Electrolytes/29582227
DOI: 10.1021/acscatal.5c03025.s001
Availability: https://doi.org/10.1021/acscatal.5c03025.s001; https://figshare.com/articles/journal_contribution/Water_Oxidation_and_Degradation_Mechanisms_of_BiVO_sub_4_sub_Photoanodes_in_Bicarbonate_Electrolytes/29582227
Rights: CC BY-NC 4.0
Accession Number: edsbas.C571035F
Database: BASE