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Sputter Growth and Characterization of Metamagnetic B2-ordered FeRh Epilayers
Published on: October 5, 2013
Surface Phase Stability of Fe2O3(001) in Hydrogen Reducing Environments: A DFT and XPS Analysis
Blake G Hudson1, Shyam B Patel2, Dan C Sorescu3
1National Energy Technology Laboratory - Postdoctoral Research Fellowship Program, Pittsburgh, Pennsylvania 15236, United States.
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This study combines density functional theory (DFT) and ab initio thermodynamics calculations with X-ray photoelectron spectroscopy (XPS) investigations to identify the reduction properties of the Fe2O3 (001) surface with implications for corrosion resistance, hydrogen transport, and energy safety. Ab initio thermodynamics modeling predicts fully hydroxylated surface stability across a broad range of pressures (1 × 10-23 to 1 × 105 mbar) and temperatures below 700 K, consistent with previous experimental studies. Above 800 K, exposures to 1 × 10-4 mbar H2, 1 × 10-4 mbar O2, or 1 × 10-4 mbar H2 + 1 × 10-4 mbar O2 each yield unique XPS signals indicating a loss of -OH coverage, aligning with DFT predictions. Insight into the mechanism of reduction as a function of H2 exposure is provided, as well as conditions that promote further reduction toward Fe3O4. Theoretical and experimental investigations indicate the ability to maintain the Fe2O3 protective layer of iron oxides that have been exposed to H2 environments by including trace amounts of aqueous O2.

