Earth-abundant oxides are promising candidates as effective and low-cost catalysts for the oxygen evolution reaction (OER) in alkaline media, which remains one of the bottlenecks in electrolysis and artificial photosynthesis. A fundamental understanding of the atomic-scale reaction mechanism during OER could drive further progress, but a stable model system has yet to be provided. Here we show that Fe3O4 single crystal surfaces, prepared in ultrahigh vacuum (UHV) are stable in alkaline electrolytein the range pH 7–14 and under OER conditions in 1 M NaOH. Fe3O4(001) and Fe3O4(110) surfaces were studied with X-ray photoelectron spectroscopy, low-energy electron diffraction, and scanning tunneling microscopy in UHV, and atomic force microscopy...
Magnetite (111) single-crystal surfaces prepared in situ under different reducing conditions and—as ...
International audiencePrecious metal-free Fe-N-C catalysts efficiently electrocatalyze the oxygen re...
The reversible transformations of thin magnetite (Fe3O4) and hematite (α-Fe2O3) films grown on Pt(11...
Earth-abundant oxides are promising candidates as effective and low-cost catalysts for the oxygen ev...
Model catalysts, where the structure of single-crystal materials with well-defined surface terminati...
Establishing the atomic-scale structure of metal-oxide surfaces during electrochemical reactions is ...
Establishing the atomic-scale structure of metal-oxide surfaces during electrochemical reactions is ...
The renewed interest in magnetite (Fe3O4) as a major phase in different types of catalysts has led u...
8 pag, 6 figs. -- Supporting Information is available at Publisher's webWe study how the (100) surfa...
We study where and how hematite (α-Fe2O3) nucleates and grows during the oxidation of magnetite(100)...
Transition metal oxides are promising materials for the development of cost-effective catalysts for ...
Funder: National Research Foundation SingaporePerovskite oxides based on earth-abundant transition m...
Transition metal oxides have gained attention as promising oxygen evolution reaction (OER) electroca...
Perovskite oxides based on earth-abundant transition metals have been extensively explored as promis...
Perovskite oxides have been at the forefront among catalysts for the oxygen evolution reaction (OER)...
Magnetite (111) single-crystal surfaces prepared in situ under different reducing conditions and—as ...
International audiencePrecious metal-free Fe-N-C catalysts efficiently electrocatalyze the oxygen re...
The reversible transformations of thin magnetite (Fe3O4) and hematite (α-Fe2O3) films grown on Pt(11...
Earth-abundant oxides are promising candidates as effective and low-cost catalysts for the oxygen ev...
Model catalysts, where the structure of single-crystal materials with well-defined surface terminati...
Establishing the atomic-scale structure of metal-oxide surfaces during electrochemical reactions is ...
Establishing the atomic-scale structure of metal-oxide surfaces during electrochemical reactions is ...
The renewed interest in magnetite (Fe3O4) as a major phase in different types of catalysts has led u...
8 pag, 6 figs. -- Supporting Information is available at Publisher's webWe study how the (100) surfa...
We study where and how hematite (α-Fe2O3) nucleates and grows during the oxidation of magnetite(100)...
Transition metal oxides are promising materials for the development of cost-effective catalysts for ...
Funder: National Research Foundation SingaporePerovskite oxides based on earth-abundant transition m...
Transition metal oxides have gained attention as promising oxygen evolution reaction (OER) electroca...
Perovskite oxides based on earth-abundant transition metals have been extensively explored as promis...
Perovskite oxides have been at the forefront among catalysts for the oxygen evolution reaction (OER)...
Magnetite (111) single-crystal surfaces prepared in situ under different reducing conditions and—as ...
International audiencePrecious metal-free Fe-N-C catalysts efficiently electrocatalyze the oxygen re...
The reversible transformations of thin magnetite (Fe3O4) and hematite (α-Fe2O3) films grown on Pt(11...