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Convergence of Electronic Structure Properties in Ionic Oxides Within a Fragment Approach

Larsson, Ernst D. LU and Veryazov, Valera LU orcid (2022) In Frontiers in Chemistry 10.
Abstract
Embedded-cluster models of crystalline solids are important to allow accurate wave function methods to be applicable to solids. The ab-initio model potential method, in which the crystal is divided into three different fragments, one quantum fragment, one ab-initio model potential fragment and one point-charge fragment, has historically been shown to be a viable tool for describing the electronic structure in ionic solids. The optimal size of these regions is, of course, individual for each crystal. In this study we analyzed the convergence of the electronic structure properties with respect to an increase of the size of the quantum part and the layer of potentials. MgO crystal and Ni: MgO were used for this... (More)
Embedded-cluster models of crystalline solids are important to allow accurate wave function methods to be applicable to solids. The ab-initio model potential method, in which the crystal is divided into three different fragments, one quantum fragment, one ab-initio model potential fragment and one point-charge fragment, has historically been shown to be a viable tool for describing the electronic structure in ionic solids. The optimal size of these regions is, of course, individual for each crystal. In this study we analyzed the convergence of the electronic structure properties with respect to an increase of the size of the quantum part and the layer of potentials. MgO crystal and Ni: MgO were used for this purpose as examples of an ideal crystal and a crystal with a point defect. We demonstrated that with an increase of the cluster size, the electron density in the inner part of the cluster becomes very similar to the electron density in the periodic model. Clusters, embedded into a layer of model potential and electrostatic field, are a good alternative to periodic description. (Less)
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author
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organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
ab initio model potential, electronic structure, embedded clusters, fragment approach, ionic solids, valency
in
Frontiers in Chemistry
volume
10
article number
951144
pages
9 pages
publisher
Frontiers Media S. A.
external identifiers
  • scopus:85135152589
  • pmid:35910725
ISSN
2296-2646
DOI
10.3389/fchem.2022.951144
language
English
LU publication?
yes
additional info
Publisher Copyright: Copyright © 2022 Larsson and Veryazov.
id
38c07678-2cd2-4b5e-b3bc-bf62e74af43e
date added to LUP
2022-08-15 12:49:30
date last changed
2024-06-27 19:39:12
@article{38c07678-2cd2-4b5e-b3bc-bf62e74af43e,
  abstract     = {{Embedded-cluster models of crystalline solids are important to allow accurate wave function methods to be applicable to solids. The ab-initio model potential method, in which the crystal is divided into three different fragments, one quantum fragment, one ab-initio model potential fragment and one point-charge fragment, has historically been shown to be a viable tool for describing the electronic structure in ionic solids. The optimal size of these regions is, of course, individual for each crystal. In this study we analyzed the convergence of the electronic structure properties with respect to an increase of the size of the quantum part and the layer of potentials. <em>MgO</em> crystal and <em>Ni</em>: <em>MgO</em> were used for this purpose as examples of an ideal crystal and a crystal with a point defect. We demonstrated that with an increase of the cluster size, the electron density in the inner part of the cluster becomes very similar to the electron density in the periodic model. Clusters, embedded into a layer of model potential and electrostatic field, are a good alternative to periodic description.}},
  author       = {{Larsson, Ernst D. and Veryazov, Valera}},
  issn         = {{2296-2646}},
  keywords     = {{ab initio model potential; electronic structure; embedded clusters; fragment approach; ionic solids; valency}},
  language     = {{eng}},
  month        = {{07}},
  publisher    = {{Frontiers Media S. A.}},
  series       = {{Frontiers in Chemistry}},
  title        = {{Convergence of Electronic Structure Properties in Ionic Oxides Within a Fragment Approach}},
  url          = {{http://dx.doi.org/10.3389/fchem.2022.951144}},
  doi          = {{10.3389/fchem.2022.951144}},
  volume       = {{10}},
  year         = {{2022}},
}