Exploring and enhancing the accuracy of interior-scaled Perdew-Zunger self-interaction correction
Puskar Bhattarai, Biswajit Santra, Kamal Wagle, Yoh Yamamoto, Rajendra, R. Zope, Adrienn Ruzsinszky, Koblar Alan Jackson, John P. Perdew

TL;DR
This paper introduces a new local scaling approach for the Perdew-Zunger self-interaction correction that improves the accuracy of density functional approximations for equilibrium properties and weak bonds.
Contribution
A novel scaling factor for LSIC that satisfies the correct atomic Z coefficient and enhances the performance of self-interaction corrections in density functional theory.
Findings
LSIC+ with LSDA outperforms PBE and is comparable to SCAN for equilibrium properties.
LSIC and LSIC+ fail to accurately predict weak bond interaction energies.
A gauge transformation enables the application of SIC to beyond-LSDA functionals, improving weak bond dissociation energies.
Abstract
The Perdew-Zunger self-interaction correction(PZ-SIC) improves the performance of density functional approximations(DFAs) for the properties that involve significant self-interaction error(SIE), as in stretched bond situations, but overcorrects for equilibrium properties where SIE is insignificant. This overcorrection is often reduced by LSIC, local scaling of the PZ-SIC to the local spin density approximation(LSDA). Here we propose a new scaling factor to use in an LSIC-like approach that satisfies an additional important constraint: the correct coefficient of atomic number Z in the asymptotic expansion of the exchange-correlation(xc) energy for atoms. LSIC and LSIC+ are scaled by functions of the iso-orbital indicator z{\sigma}, which distinguishes one-electron regions from many-electron regions. LSIC+ applied to LSDA works better for many equilibrium properties than LSDA-LSIC and the…
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