Crystal structure and surface relaxation in Cr2O3 with a transferable oxide interaction potential

An extended ionic interaction model, originally devised for alkaline earth oxides, is transformed into a potential for Cr2O3 by scaling parameters in a well-defined way to allow for the changes in cation radius and charge and in ionic polarizability. The extended ionic model allows for the induction...

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Main Authors: Rowley, A, Wilson, M, Madden, P
Format: Journal article
Language:English
Published: IOP 1999
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author Rowley, A
Wilson, M
Madden, P
author_facet Rowley, A
Wilson, M
Madden, P
author_sort Rowley, A
collection OXFORD
description An extended ionic interaction model, originally devised for alkaline earth oxides, is transformed into a potential for Cr2O3 by scaling parameters in a well-defined way to allow for the changes in cation radius and charge and in ionic polarizability. The extended ionic model allows for the induction of dipoles and quadrupoles and for deformations in the ionic shape, as perceived through the short-range interionic repulsion. The transformed potential predicts corundum as the lowest energy crystal, as is observed experimentally: induced quadrupoles are confirmed as playing an important role in stabilizing this structure. The predicted unit cell parameters and ionic positions are in good agreement with experiment. The model is used to study the relaxation of two low index surfaces, (0001) and (011̄2). The (011̄2) is shown to be energetically favoured over the (0001), which is consistent with the experimental observation of it as a free surface. The relaxation of the (0001) surface is shown to be in excellent agreement with LEED observations and with ab initio studies, in which several layers of ions are allowed to fully relax.
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spelling oxford-uuid:4068be4b-fe0f-42db-8135-c503a64b862d2022-03-26T14:37:45ZCrystal structure and surface relaxation in Cr2O3 with a transferable oxide interaction potentialJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:4068be4b-fe0f-42db-8135-c503a64b862dEnglishSymplectic Elements at OxfordIOP1999Rowley, AWilson, MMadden, PAn extended ionic interaction model, originally devised for alkaline earth oxides, is transformed into a potential for Cr2O3 by scaling parameters in a well-defined way to allow for the changes in cation radius and charge and in ionic polarizability. The extended ionic model allows for the induction of dipoles and quadrupoles and for deformations in the ionic shape, as perceived through the short-range interionic repulsion. The transformed potential predicts corundum as the lowest energy crystal, as is observed experimentally: induced quadrupoles are confirmed as playing an important role in stabilizing this structure. The predicted unit cell parameters and ionic positions are in good agreement with experiment. The model is used to study the relaxation of two low index surfaces, (0001) and (011̄2). The (011̄2) is shown to be energetically favoured over the (0001), which is consistent with the experimental observation of it as a free surface. The relaxation of the (0001) surface is shown to be in excellent agreement with LEED observations and with ab initio studies, in which several layers of ions are allowed to fully relax.
spellingShingle Rowley, A
Wilson, M
Madden, P
Crystal structure and surface relaxation in Cr2O3 with a transferable oxide interaction potential
title Crystal structure and surface relaxation in Cr2O3 with a transferable oxide interaction potential
title_full Crystal structure and surface relaxation in Cr2O3 with a transferable oxide interaction potential
title_fullStr Crystal structure and surface relaxation in Cr2O3 with a transferable oxide interaction potential
title_full_unstemmed Crystal structure and surface relaxation in Cr2O3 with a transferable oxide interaction potential
title_short Crystal structure and surface relaxation in Cr2O3 with a transferable oxide interaction potential
title_sort crystal structure and surface relaxation in cr2o3 with a transferable oxide interaction potential
work_keys_str_mv AT rowleya crystalstructureandsurfacerelaxationincr2o3withatransferableoxideinteractionpotential
AT wilsonm crystalstructureandsurfacerelaxationincr2o3withatransferableoxideinteractionpotential
AT maddenp crystalstructureandsurfacerelaxationincr2o3withatransferableoxideinteractionpotential