Oxidation of barium on the surface of nanothick chromium oxide films grown on the (110) molybdenum substrate

Auger electron spectroscopy and work function measurements were used to investigate adsorption of barium onto the surface of nanothick chromium oxide films grown on the (110) molybdenum substrate. We prepared smooth 3‐monolayers (ML) thick pseudomorphic chromium oxide films and rough 2–3 ML chromium...

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Published inMaterialwissenschaft und Werkstofftechnik Vol. 40; no. 4; pp. 273 - 276
Main Authors Klimenko, E.V., Starovojtova, L.N., Zasimovich, I.N., Naumovets, A.G.
Format Journal Article
LanguageEnglish
Published Weinheim WILEY-VCH Verlag 01.04.2009
WILEY‐VCH Verlag
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Summary:Auger electron spectroscopy and work function measurements were used to investigate adsorption of barium onto the surface of nanothick chromium oxide films grown on the (110) molybdenum substrate. We prepared smooth 3‐monolayers (ML) thick pseudomorphic chromium oxide films and rough 2–3 ML chromium oxide films carrying three‐dimensional oxide nanoparticles (the Stranski‐Krastanov (SK) surface morphology). The interaction of barium with chromium oxide films of both types was found to lead to barium oxide formation and partial reduction of chromium oxide to chromium. When barium was deposited onto a 3 ML pseudomorphic chromium oxide film, the barium oxidation at room temperature was restricted to formation of only one monolayer of barium oxide. However, in the case of barium adsorption on chromium oxide film with the SK type surface morphology, the oxidation encompassed 3 monolayers of barium. A strong effect of metal substrate‐oxide film interface on the oxidation ability of nanothick oxide films was revealed. These results showed possibilities of tailoring surface properties of the barium oxide films by variation of their thickness and by substrate‐film interface modification.
Bibliography:istex:E460972D72D485E58A1473401B13E56F7D60B60D
ark:/67375/WNG-509B3NSQ-P
ArticleID:MAWE200800440
ObjectType-Article-2
SourceType-Scholarly Journals-1
ObjectType-Feature-1
content type line 23
ISSN:0933-5137
1521-4052
DOI:10.1002/mawe.200800440