Mitigating Redox Mediator-Induced Surface Recombination for Efficient Photoelectrocatalytic Benzyl Alcohol Oxidation on Mo-Doped Bismuth Vanadate

Abstract

Synthetic photoelectrochemistry offers a sustainable route for selective organic transformations under visible light, yet carrier recombination losses at the electrode-electrolyte interfaces remain a critical bottleneck. Although redox mediators are often employed to improve selectivity and circumvent kinetic barriers, their interactions with the photoelectrodes are not well understood. Here we show that N-hydroxysuccinimide (NHS), a widely used hydrogen atom transfer (HAT) mediator, dynamically adsorbs onto oxygen vacancies on BiVO4 photoanodes, forming extrinsic interfacial states that trap photogenerated holes. Time-resolved photoelectrochemical and voltametric analyses reveal a direct correlation between this interfacial recombination pathway, photocurrent declines, and diminished reaction yields. Incorporating Mo dopant in BiVO4 increases the oxygen-vacancy formation energy, while electrolyte cation tuning modulates the electrochemical double-layer structure, jointly suppressing NHS chemisorption and mitigating surface recombination. During selective PEC oxidation of benzyl alcohol to benzaldehyde, optimized Mo-doped BiVO4 photoanodes achieve a conversion rate of 19.1 ± 1.4 μmol cm-2 h-1 with >92% Faradaic efficiency, representing the highest performance reported for BiVO4-based benzylic alcohol oxidation. These findings identify interfacial mediator adsorption as a previously overlooked recombination channel and establish rational interfacial design as a powerful strategy for broadly tunable, high-efficiency light-driven organic synthesis.

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Article information

Article type
Paper
Submitted
28 Jan 2026
Accepted
25 Mar 2026
First published
26 Mar 2026

Sustainable Energy Fuels, 2026, Accepted Manuscript

Mitigating Redox Mediator-Induced Surface Recombination for Efficient Photoelectrocatalytic Benzyl Alcohol Oxidation on Mo-Doped Bismuth Vanadate

C. Kuang, Y. Chen, G. Tu, H. Chen, J. Fong, Y. Wang, C. Chang, J. Wu, T. Chang, C. Chang, H. Tian and C. Jiang, Sustainable Energy Fuels, 2026, Accepted Manuscript , DOI: 10.1039/D6SE00110F

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