Surface structure and bonding in the strongly correlated metal oxides NiO and UO2

We show atomic resolution elevated temperature scanning tunneling microscope images of the NiO (001) and UO2 (111) surfaces. When imaging the empty states structure of NiO, a fourfold symmetric hole state is observed around defects and step edges which influences the second nearest neighbor Ni ions....

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المؤلفون الرئيسيون: Castell, M, Dudarev, S, Muggelberg, C, Sutton, A, Briggs, G, Goddard, D
التنسيق: Conference item
منشور في: 1998
_version_ 1826291227436253184
author Castell, M
Dudarev, S
Muggelberg, C
Sutton, A
Briggs, G
Goddard, D
author_facet Castell, M
Dudarev, S
Muggelberg, C
Sutton, A
Briggs, G
Goddard, D
author_sort Castell, M
collection OXFORD
description We show atomic resolution elevated temperature scanning tunneling microscope images of the NiO (001) and UO2 (111) surfaces. When imaging the empty states structure of NiO, a fourfold symmetric hole state is observed around defects and step edges which influences the second nearest neighbor Ni ions. A similar effect is not observed on the UO2 (111) surface. We explain this difference in terms of the degree of covalent coupling that is involved in the bonding of these oxides. Modeling of the electronic structure through the local spin density approximation incorporating the Hubbard U is used to create charge density maps which show that there is a significant element of nonsphericity of charge distribution around the Ni ions in NiO, but that the distribution is spherical in UO2. (C) 1998 American Vacuum Society.
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spelling oxford-uuid:af6548fb-b9d2-4e64-ae03-b364e361cda52022-03-27T03:49:17ZSurface structure and bonding in the strongly correlated metal oxides NiO and UO2Conference itemhttp://purl.org/coar/resource_type/c_5794uuid:af6548fb-b9d2-4e64-ae03-b364e361cda5Symplectic Elements at Oxford1998Castell, MDudarev, SMuggelberg, CSutton, ABriggs, GGoddard, DWe show atomic resolution elevated temperature scanning tunneling microscope images of the NiO (001) and UO2 (111) surfaces. When imaging the empty states structure of NiO, a fourfold symmetric hole state is observed around defects and step edges which influences the second nearest neighbor Ni ions. A similar effect is not observed on the UO2 (111) surface. We explain this difference in terms of the degree of covalent coupling that is involved in the bonding of these oxides. Modeling of the electronic structure through the local spin density approximation incorporating the Hubbard U is used to create charge density maps which show that there is a significant element of nonsphericity of charge distribution around the Ni ions in NiO, but that the distribution is spherical in UO2. (C) 1998 American Vacuum Society.
spellingShingle Castell, M
Dudarev, S
Muggelberg, C
Sutton, A
Briggs, G
Goddard, D
Surface structure and bonding in the strongly correlated metal oxides NiO and UO2
title Surface structure and bonding in the strongly correlated metal oxides NiO and UO2
title_full Surface structure and bonding in the strongly correlated metal oxides NiO and UO2
title_fullStr Surface structure and bonding in the strongly correlated metal oxides NiO and UO2
title_full_unstemmed Surface structure and bonding in the strongly correlated metal oxides NiO and UO2
title_short Surface structure and bonding in the strongly correlated metal oxides NiO and UO2
title_sort surface structure and bonding in the strongly correlated metal oxides nio and uo2
work_keys_str_mv AT castellm surfacestructureandbondinginthestronglycorrelatedmetaloxidesnioanduo2
AT dudarevs surfacestructureandbondinginthestronglycorrelatedmetaloxidesnioanduo2
AT muggelbergc surfacestructureandbondinginthestronglycorrelatedmetaloxidesnioanduo2
AT suttona surfacestructureandbondinginthestronglycorrelatedmetaloxidesnioanduo2
AT briggsg surfacestructureandbondinginthestronglycorrelatedmetaloxidesnioanduo2
AT goddardd surfacestructureandbondinginthestronglycorrelatedmetaloxidesnioanduo2