First-principles quantum techniques based on density functional theory (DFT) have made important contributions to the understanding of oxide surfaces over the last four years. Important features of these calculations include: the use of periodic boundary conditions, which avoid the edge effects associated with the cluster approach; plane-wave basis sets, which make the calculation of ionic forces straightforward, so that both static relaxation and dynamical simulation can be done; and the approximate inclusion of electron correlation. A short introduction to DFT techniques is given, and recent work on the structure and energetics of a variety of oxide surfaces is presented. It is shown how the techniques can be used to study molecular and dissociative adsorption of molecules on oxide surfaces, with the emphasis on water and simple organic molecules. The growing importance of dynamical first-principles simulation in the study of surface chemical reactions is illustrated.
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October 01, 1998
Molecular processes on oxide surfaces studied by first-principles calculations
M. J. Gillan;
M. J. Gillan
Keele University, Physics Dept., Staffordshire, United Kingdom
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M. J. Gillan
Keele University, Physics Dept., Staffordshire, United Kingdom
P. J. D. Lindan
L. N. Kantorovich
S. P. Bates
Publisher: Mineralogical Society of Great Britain and Ireland
First Online:
13 Dec 2017
Online ISSN: 1471-8022
Print ISSN: 0026-461X
GeoRef, Copyright 2004, American Geological Institute.
American Geological Institute
Mineralogical Magazine (1998) 62 (5): 669–685.
Article history
First Online:
13 Dec 2017
Citation
M. J. Gillan, P. J. D. Lindan, L. N. Kantorovich, S. P. Bates; Molecular processes on oxide surfaces studied by first-principles calculations. Mineralogical Magazine 1998;; 62 (5): 669–685. doi:
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