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How the anisotropy of surface oxide formation influences the transient activity of a surface reaction

P. Winkler, J. Zeininger, Y. Suchorski, M. Stöger-Pollach, P. Zeller, M. Amati, L. Gregoratti and G. Rupprechter ()
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P. Winkler: Institute of Materials Chemistry
J. Zeininger: Institute of Materials Chemistry
Y. Suchorski: Institute of Materials Chemistry
M. Stöger-Pollach: University Service Center for Transmission Electron Microscopy, TU Wien
P. Zeller: Elettra–Sincrotrone Trieste S.C.p.A.
M. Amati: Elettra–Sincrotrone Trieste S.C.p.A.
L. Gregoratti: Elettra–Sincrotrone Trieste S.C.p.A.
G. Rupprechter: Institute of Materials Chemistry

Nature Communications, 2021, vol. 12, issue 1, 1-8

Abstract: Abstract Scanning photoelectron microscopy (SPEM) and photoemission electron microscopy (PEEM) allow local surface analysis and visualising ongoing reactions on a µm-scale. These two spatio-temporal imaging methods are applied to polycrystalline Rh, representing a library of well-defined high-Miller-index surface structures. The combination of these techniques enables revealing the anisotropy of surface oxidation, as well as its effect on catalytic hydrogen oxidation. In the present work we observe, using locally-resolved SPEM, structure-sensitive surface oxide formation, which is summarised in an oxidation map and quantitatively explained by the novel step density (SDP) and step edge (SEP) parameters. In situ PEEM imaging of ongoing H2 oxidation allows a direct comparison of the local reactivity of metallic and oxidised Rh surfaces for the very same different stepped surface structures, demonstrating the effect of Rh surface oxides. Employing the velocity of propagating reaction fronts as indicator of surface reactivity, we observe a high transient activity of Rh surface oxide in H2 oxidation. The corresponding velocity map reveals the structure-dependence of such activity, representing a direct imaging of a structure-activity relation for plenty of well-defined surface structures within one sample.

Date: 2021
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DOI: 10.1038/s41467-020-20377-9

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