A. Chakrabarti, K. Hermann, R. Druzinic, M. Witko,* F. Wagner, and M. Petersen
Theory Department, Fritz-Haber-Institut der MPG, Faradayweg 4-6, D-14195 Berlin, Germany
~Received 11 May 1998; revised manuscript received 23 October 1998!
Abstract
Density-functional theory ~DFT! studies are performed to examine geometric and electronic properties of
orthorhombic bulk V2O5 as well as of its ~010! oriented surface. Electronic states, total energies, as well as
atom forces ~used to obtain equilibrium geometries! are computed with the ab initio full-potential linear
augmented plane wave method. The V2O5(010) surface is modeled by periodic single layers in a repeated slab
geometry, which is justified by the weak electronic interlayer coupling found in the bulk calculations. The
electronic structure of the V2O5(010) single-layer slabs, represented by their valence densities of states ~DOS!
and its atom contributions, is compared with results of bulk V2O5 and with previous results obtained by DFT
surface cluster studies. The comparison yields good qualitative agreement between the different approaches,
which confirms the local nature of interatomic binding in V2O5. Further, the computed valence DOS is used to
interpret recent experimental results from photoemission on V2O5(010), which suggests that differently coordinated oxygen sites at the surface can be identified in the spectrum. Thus, V2O5(010) photoemission spectra
may be used to monitor the participation of oxygen ions in respective surface reactions.
https://pdfs.semanticscholar.org/82b0/701291c42fb9da88818b3968145550a67176.pdf
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