Hematite α‐Fe2O3(0001) in Top and Side View: Resolving Long‐Standing Controversies about Its Surface Structure

Author:

Redondo Jesús12ORCID,Michalička Jan3ORCID,Kraushofer Florian4ORCID,Franceschi Giada4ORCID,Šmid Břetislav1ORCID,Kumar Nishant3ORCID,Man Ondřej3ORCID,Blatnik Matthias3ORCID,Wrana Dominik15ORCID,Mallada Benjamin6ORCID,Švec Martin6ORCID,Parkinson Gareth S.4ORCID,Setvin Martin1ORCID,Riva Michele4ORCID,Diebold Ulrike4ORCID,Čechal Jan3ORCID

Affiliation:

1. Faculty of Mathematics and Physics Charles University V Holešovičkách 2/747 Prague Praha 18000 Czech Republic

2. Faculty of Chemistry University of the Basque Country Paseo Manuel Lardizabal 3 Donostia‐San Sebastián Guipuzkoa 20018 Spain

3. Central European Institute of Technology Brno University of Technology Purkyňova 123 61200 Brno Czech Republic

4. Institute of Applied Physics Technische Universität Wien Wiedner Hauptstraße 8‐10/E134 1040 Vienna Austria

5. Marian Smoluchowski Institute of Physics Jagiellonian University Prof. Stanisława Łojasiewicza 11 30‐348 Krakow Poland

6. Institute of Physics Czech Academy of Science Na Slovance 2 18200 Prague Czech Republic

Abstract

AbstractHematite is a common iron oxide found in nature, and the α‐Fe2O3(0001) plane is prevalent on the nanomaterial utilized in photo‐ and electrocatalytic applications. The atomic‐scale structure of the surface remains controversial despite decades of study, partly because it depends on sample history as well as the preparation conditions. Here, a comprehensive study is performed using an arsenal of surface techniques (non‐contact atomic force microscopy, scanning tunneling microscopy, low‐energy electron diffraction, and X‐ray photoemission spectroscopy) complemented by analyses of the near surface region by high‐resolution transmission electron microscopy and electron energy loss spectroscopy. The results show that the so‐called “bi‐phase” termination forms even under highly oxidizing conditions; a (1 × 1) surface is only observed in the presence of impurities. Furthermore, it is shown that the biphase is actually a continuous layer distorted due to a mismatch with the subsurface layers, and thus not the proposed mixture of FeO(111) and α‐Fe2O3(0001) phases. Overall, the results show how combining surface and cross‐sectional imaging provides a full view that can be essential for understanding the role of the near‐surface region on oxide surface properties.

Funder

H2020 European Research Council

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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