Oxygen-inducedreconstruction on Mo(112) studied by LEED and STM
- 6 March 2002
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 65 (11) , 115411
- https://doi.org/10.1103/physrevb.65.115411
Abstract
The open trough-and-row Mo(112) surface serves as substrate for the epitaxial growth of In the early stage of oxygen exposure, oxygen chemisorption induces a surface reconstruction of the missing row type on Mo(112). The surface structure of this reconstructed surface has been studied in detail by low-energy electron diffraction and scanning tunneling microscope. The experimental findings can be explained based on the effective medium theory for oxygen adsorption on transition-metal surfaces, providing a structure model for the oxygen-modified Mo(112) surface. The structure model allows the discussion of the oxygen-chemisorbed surface phase as a possible precursor state for the epitaxial growth on Mo(112).
Keywords
This publication has 39 references indexed in Scilit:
- Fermi surface contours of p(2×2)O/Mo(110): an angle-resolved photoelectron spectroscopy studySurface Science, 2000
- The structure of oxygen adsorbed on Mo(100) studied by high-reolution electron energy-loss spectroscopySurface Science, 2000
- Structure and reactivity of thin-film oxides and metalsApplied Surface Science, 1999
- Raman Spectroscopy of Monolayer-Type Catalysts: Supported Molybdenum OxidesCatalysis Reviews, 1998
- Competing pathways for methoxy decomposition on oxygen-covered Mo(110)The Journal of Chemical Physics, 1998
- Adsorbate vibrations and substrate surface phonons ofPhysical Review B, 1998
- Oxygen interactions with a Mo(001) surface studied by scanning tunneling microscopySurface Science, 1996
- Oxygen-induced (2 × 1) missing row structure on Mo(001) studied by scanning tunneling microscopySurface Science, 1996
- Interaction of oxygen with Mo(100), Mo(110), and Mo(111) surfaces. RHEED and AES analyses of the molybdenum oxide nucleation and growthJournal of Solid State Chemistry, 1991
- Interaction of oxygen with a Mo(111) surfaceSurface Science, 1985