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Density functional theory studies of the structure and electronic structure of pure and defective low index surfaces of ceria

Nolan, M., Grigoleit, S., Sayle, D.C., Parker, S.C., Watson, G.W. (2005) Density functional theory studies of the structure and electronic structure of pure and defective low index surfaces of ceria. Surface Science, 576 (1-3). pp. 217-229. ISSN 00396028 (ISSN). (doi:10.1016/j.susc.2004.12.016) (The full text of this publication is not currently available from this repository. You may be able to access a copy if URLs are provided) (KAR id:46803)

The full text of this publication is not currently available from this repository. You may be able to access a copy if URLs are provided.
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Abstract

We present periodic density functional theory (DFT) calculations of bulk ceria and its low index surfaces (1 1 1), (1 1 0) and (1 0 0). We find that the surface energies increase in the order (1 1 1) > (1 1 0) > (1 0 0), while the magnitude of the surface relaxations follows the inverse order. The electronic properties of the bulk and surfaces are analysed by means of the electronic density of states and the electron density. We demonstrate that the bonding in pure ceria is partially covalent and analysis of the resulting electronic states confirms the presence of localised Ce 4f states above the Fermi level. The surface atoms show only a small change in the charge distribution in comparison to the bulk and from the DOS the main differences are due to the changes in the oxygen 2p and cerium 5 d states. Investigation of the atomic and electronic structure of an oxygen vacancy on the (1 0 0) surface shows the problems DFT can have with the description of strongly localised systems, wrongly predicting electron delocalisation over all of the cerium atoms in the simulation cell. We demonstrate an improvement in the description of the strongly correlated cerium 4f states in partially reduced ceria by applying the DFT+U methodology, which leads to the appearance of a new gap state between the valence band and the empty Ce 4f band. Analysis of the partial charge density shows that these states are localised on the CeIII ions neighbouring the oxygen vacancy. In terms of classical defect chemistry, the vacancy is bound by two neighbouring CeIII ions, which have been reduced from Ce IV, i.e. VO··+2CeCe�. The remaining Ce ions are in the CeIV oxidation state. The localisation of Ce 4f electrons modifies the predicted structure of the defective surface. © 2004 Published by Elsevier B.V.

Item Type: Article
DOI/Identification number: 10.1016/j.susc.2004.12.016
Additional information: Unmapped bibliographic data: LA - English [Field not mapped to EPrints] J2 - Surf Sci [Field not mapped to EPrints] AD - Department of Chemistry, Trinity College, University of Dublin, Dublin 2, Ireland [Field not mapped to EPrints] AD - Dept. Environ. and Ordanance Syst., RMCS, Cranfield University, Shrivenham, Swindon SN6 8LA, United Kingdom [Field not mapped to EPrints] AD - Department of Chemistry, University of Bath, Claverton Down, Bath BA2 7AY, United Kingdom [Field not mapped to EPrints] DB - Scopus [Field not mapped to EPrints]
Uncontrolled keywords: Alumina, Carrier concentration, Catalysts, Computer simulation, Electronic structure, Fermi level, Interfacial energy, Oxygen, Probability density function, Redox reactions, Reduction, Relaxation processes, Atomistic simulations, Ceria, Density functional theory (DFT), Valence bands, Cerium compounds
Subjects: Q Science
Divisions: Divisions > Division of Natural Sciences > Physics and Astronomy
Depositing User: Dean Sayle
Date Deposited: 06 Mar 2015 16:36 UTC
Last Modified: 16 Nov 2021 10:19 UTC
Resource URI: https://kar.kent.ac.uk/id/eprint/46803 (The current URI for this page, for reference purposes)

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