Self-interaction (SI) error, which results when exchange-correlation contributions to the total energy are approximated, limits the reliability of many density functional approximations. The Perdew-Zunger SI correction (PZSIC), when applied in conjunction with the local spin density approximation (LSDA), improves the description of many properties, but overall, this improvement is limited. Here, we propose a modification to PZSIC that uses an iso-orbital indicator to identify regions where local SICs should be applied. Using this local-scaling SIC (LSIC) approach with LSDA, we analyze predictions for a wide range of properties including, for atoms, total energies, ionization potentials, and electron affinities and, for molecules, atomization energies, dissociation energy curves, reaction energies, and reaction barrier heights. LSIC preserves the results of PZSIC-LSDA for properties where it is successful and provides dramatic improvements for many of the other properties studied. Atomization energies calculated using LSIC are better than those of the Perdew, Burke, and Ernzerhof generalized gradient approximation (GGA) and close to those obtained with the strongly constrained and appropriately normed meta-GGA. LSIC also restores the uniform gas limit for the exchange energy that is lost in PZSIC-LSDA. Further performance improvements may be obtained by an appropriate combination or modification of the local scaling factor and the particular density functional approximation.
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A step in the direction of resolving the paradox of Perdew-Zunger self-interaction correction
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7 December 2019
Research Article|
December 05 2019
A step in the direction of resolving the paradox of Perdew-Zunger self-interaction correction
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Rajendra R. Zope
;
Rajendra R. Zope
a)
1
Department of Physics, University of Texas at El Paso
, El Paso, Texas 79968, USA
a)Author to whom correspondence should be addressed: [email protected]
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Yoh Yamamoto
;
Yoh Yamamoto
1
Department of Physics, University of Texas at El Paso
, El Paso, Texas 79968, USA
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Carlos M. Diaz
;
Carlos M. Diaz
1
Department of Physics, University of Texas at El Paso
, El Paso, Texas 79968, USA
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Tunna Baruah
;
Tunna Baruah
1
Department of Physics, University of Texas at El Paso
, El Paso, Texas 79968, USA
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Juan E. Peralta
;
Juan E. Peralta
2
Physics Department and Science of Advanced Materials Program, Central Michigan University
, Mt. Pleasant, Michigan 48859, USA
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Koblar A. Jackson
;
Koblar A. Jackson
2
Physics Department and Science of Advanced Materials Program, Central Michigan University
, Mt. Pleasant, Michigan 48859, USA
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Biswajit Santra
;
Biswajit Santra
3
Department of Physics, Temple University
, Philadelphia, Pennsylvania 19122, USA
and Department of Chemistry, Temple University
, Philadelphia, Pennsylvania 19122, USA
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John P. Perdew
John P. Perdew
3
Department of Physics, Temple University
, Philadelphia, Pennsylvania 19122, USA
and Department of Chemistry, Temple University
, Philadelphia, Pennsylvania 19122, USA
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Rajendra R. Zope
1,a)
Yoh Yamamoto
1
Carlos M. Diaz
1
Tunna Baruah
1
Juan E. Peralta
2
Koblar A. Jackson
2
Biswajit Santra
3
John P. Perdew
3
1
Department of Physics, University of Texas at El Paso
, El Paso, Texas 79968, USA
2
Physics Department and Science of Advanced Materials Program, Central Michigan University
, Mt. Pleasant, Michigan 48859, USA
3
Department of Physics, Temple University
, Philadelphia, Pennsylvania 19122, USA
and Department of Chemistry, Temple University
, Philadelphia, Pennsylvania 19122, USA
a)Author to whom correspondence should be addressed: [email protected]
J. Chem. Phys. 151, 214108 (2019)
Article history
Received:
September 29 2019
Accepted:
November 07 2019
Citation
Rajendra R. Zope, Yoh Yamamoto, Carlos M. Diaz, Tunna Baruah, Juan E. Peralta, Koblar A. Jackson, Biswajit Santra, John P. Perdew; A step in the direction of resolving the paradox of Perdew-Zunger self-interaction correction. J. Chem. Phys. 7 December 2019; 151 (21): 214108. https://doi.org/10.1063/1.5129533
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