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Linking Oxygen Evolution Selectivity to Water Oxidation Reaction Order on Hematite Photoanodes by Operando Photoelectrochemical Mass Spectrometry

Daniele Benetti, Søren Bertelsen Scott, Shijie Yu, James Murawski, Caiwu Liang, Anna Winiwarter, Guangmeimei Yang, Andreas Kafizas, Anna Hankin, Stephens Ifan E L, James Robert Durrant, Flurin D. Eisner

Peer-reviewed journalBold claims, read critically

In the authors' words

Abstract Water oxidation on metal-oxide (photo)anodes is often assumed to yield molecular oxygen. Here, we combine operando photoelectrochemical mass-spectrometry oxygen detection with spectroelectrochemical rate law analyses to link oxygen selectivity to surface-hole density on hematite photoanodes. At low current and hole densities, where first-order kinetics dominate, a near-zero Faradaic efficiency for oxygen evolution is observed, revealing that isolated single-hole water oxidation is poorly coupled to molecular oxygen formation. Increasing surface-hole density sharply increases O2 Faradaic efficiency, showing that the kinetic crossover to cooperative third-order water oxidation is also a selectivity switch toward O2 evolution. Equivalent behavior under dark electrochemical operation shows that multihole chemistry is intrinsic to hematite and governs selective oxygen evolution, likely representing a general feature of semiconducting metaloxides.

Main resultThe abstract does not state a limitation.

Appeared: Monday, September 28. Journal of the American Chemical Society. Peer-reviewed journal.

DOI: 10.1021/jacs.6c11949