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- W2114689076 abstract "Abstract The demand for renewable hydrogen derived from CO 2 ‐neutral water‐splitting processes spurs efforts to develop new catalysts, including those inspired by nature. A first‐principles quantum mechanics (Kohn–Sham density functional theory + U ) approach has been used to model electrocatalytic water oxidation on the visible‐light‐absorbing transition‐metal oxide alloy, MnO:ZnO; a material that can be considered a heterogeneous analogue to the photosystem II photocatalyst. Ab‐initio‐derived U values were used to correct self‐interaction errors in the highly correlated material. It has been confirmed that previously established scaling relationships between the binding energies of reaction intermediates are valid. The predicted electrochemical overpotential for water oxidation under experimentally relevant conditions (0.82 V versus the standard hydrogen electrode) is slightly higher than those values reported for manganese oxides and comparable to those previously calculated values for hematite photoanodes." @default.
- W2114689076 created "2016-06-24" @default.
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- W2114689076 date "2014-01-21" @default.
- W2114689076 modified "2023-10-10" @default.
- W2114689076 title "First-Principles Modeling of Electrochemical Water Oxidation on MnO:ZnO(001)" @default.
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- W2114689076 doi "https://doi.org/10.1002/celc.201300089" @default.
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