The Surface Structure of Cu2O(100)

Despite the industrial importance of copper oxides, the nature of the (100) surface of Cu2O has remained poorly understood. The surface has previously been subject to several theoretical and experimental studies, but has until now not been investigated by atomically resolved microscopy or high-resol...

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Published inJournal of physical chemistry. C Vol. 120; no. 8; pp. 4373 - 4381
Main Authors Soldemo, Markus, Stenlid, Joakim Halldin, Besharat, Zahra, Ghadami Yazdi, Milad, Önsten, Anneli, Leygraf, Christofer, Göthelid, Mats, Brinck, Tore, Weissenrieder, Jonas
Format Journal Article
LanguageEnglish
Published American Chemical Society 03.03.2016
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Summary:Despite the industrial importance of copper oxides, the nature of the (100) surface of Cu2O has remained poorly understood. The surface has previously been subject to several theoretical and experimental studies, but has until now not been investigated by atomically resolved microscopy or high-resolution photoelectron spectroscopy. Here we determine the atomic structure and electronic properties of Cu2O­(100) by a combination of multiple experimental techniques and simulations within the framework of density functional theory (DFT). Low-energy electron diffraction (LEED) and scanning tunneling microscopy (STM) characterized the three ordered surface structures found. From DFT calculations, the structures are found to be energetically ordered as (3,0;1,1), c(2 × 2), and (1 × 1) under ultrahigh vacuum conditions. Increased oxygen pressures induce the formation of an oxygen terminated (1 × 1) surface structure. The most common termination of Cu2O­(100) has previously been described by a (3√2 × √2)­R45° unit cell exhibiting a LEED pattern with several missing spots. Through atomically resolved STM, we show that this structure instead is described by the matrix (3,0;1,1). Both simulated STM images and calculated photoemission core level shifts compare favorably with the experimental results.
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ISSN:1932-7447
1932-7455
1932-7455
DOI:10.1021/acs.jpcc.5b11350