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February 2, 2026Journal of the American Chemical Society6 citationsOpen Access

Observation of Transition from Rate Law to Butler–Volmer Controlled Water Oxidation Kinetics on Hematite Photoanodes

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THTianhao HeDBDaniele BenettiCTCindy Tseng

Key Points

  • This study aims to clarify the mechanistic pathway of water oxidation on hematite photoanodes by examining kinetic transitions.
  • Combined operando photoinduced absorption spectroscopy and photocurrent analyses
  • Investigated μ-Fe2O3 (hematite) under varying light intensities
  • Analyzed reaction kinetics as a function of hole densities
  • Identified a transition from population-controlled to Butler-Volmer-like kinetics
  • Found that surface M-OH species oxidation triggers this crossover
  • Revealed design principles for optimizing water oxidation in metal oxides

Abstract

Despite its central role in photoelectrochemical (PEC) water splitting, the mechanistic pathway of water oxidation on metal oxides remains unresolved, with population-based and Butler-Volmer (BV) models offering distinct views on how surface valence band holes drive the reaction. Here, we bring together these two perspectives by combining operando photoinduced absorption (PIA) spectroscopy with photocurrent analyses on α-Fe2O3 (hematite) photoanodes as a function of light intensity. We find a crossover from population-controlled, rate law water oxidation at low hole densities to a BV-like, potential driven regime at high densities, triggered by band edge unpinning once surface M-OH species are fully oxidized, and excess holes accumulate without compensation. This mechanistic transition unifies competing models of interfacial charge transfer and reveals design principles for optimizing water oxidation in metal oxide photoelectrodes.

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Cite This Study

He et al. (2026) studied this question.

synapsesocial.com/papers/6980fc91c1c9540dea80e66ahttps://doi.org/10.1021/jacs.5c18734
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