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  5. Symmetry breaking and self-interaction correction in the chromium atom and dimer

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Article
en
2024

Symmetry breaking and self-interaction correction in the chromium atom and dimer

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en
2024
Vol 160 (14)
Vol. 160
DOI: 10.1063/5.0180863

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John P Perdew
John P Perdew

Tulane University

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Rohan Maniar
Kushantha P. K. Withanage
Chandra Shahi
+3 more

Abstract

Density functional approximations to the exchange-correlation energy can often identify strongly correlated systems and estimate their energetics through energy-minimizing symmetry-breaking. In particular, the binding energy curve of the strongly correlated chromium dimer is described qualitatively by the local spin density approximation (LSDA) and almost quantitatively by the Perdew-Burke-Ernzerhof generalized gradient approximation (PBE-GGA), where the symmetry breaking is antiferromagnetic for both. Here, we show that a full Perdew-Zunger self-interaction-correction (SIC) to LSDA seems to go too far by creating an unphysical symmetry-broken state, with effectively zero magnetic moment but non-zero spin density on each atom, which lies ∼4 eV below the antiferromagnetic solution. A similar symmetry-breaking, observed in the atom, better corresponds to the 3d↑↑4s↑3d↓↓4s↓ configuration than to the standard 3d↑↑↑↑↑4s↑. For this new solution, the total energy of the dimer at its observed bond length is higher than that of the separated atoms. These results can be regarded as qualitative evidence that the SIC needs to be scaled down in many-electron regions.

How to cite this publication

Rohan Maniar, Kushantha P. K. Withanage, Chandra Shahi, Aaron D. Kaplan, John P Perdew, Mark R. Pederson (2024). Symmetry breaking and self-interaction correction in the chromium atom and dimer. , 160(14), DOI: https://doi.org/10.1063/5.0180863.

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Publication Details

Type

Article

Year

2024

Authors

6

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1063/5.0180863

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