Ionization energy: sd transfer error and Perdew-Zunger self-interaction correction energy penalty in 3d atoms
ORAL
Abstract
To accurately describe the energetics of transition metal systems, density functional approximations (DFAs) must provide a balanced description of s- and d- electrons. One measure of this is the sd transfer error, which has previously been defined as E(3dn−14s1)−E(3dn−24s2). Theoretical concerns have been raised on the validity of these results owing to the evaluation of excited-state energies using ground-state DFAs. A more serious concern appears to be strong correlations in the 4s2 configuration. Here we define a ground-state measure of the sd transfer error, based on the errors of s- and d-electron second ionization energies of the atoms, that effectively circumvents the aforementioned problems. We find an improved performance as we move from LSDA to PBE to r2SCAN for first-row transition metal atoms. However, we found large (~ 2 eV) ground-state sd transfer errors when applying a Perdew-Zunger self-interaction correction. This is attributed to an "energy penalty" associated with the noded 3d orbitals. A local scaling of the self-interaction correction to LSDA results in a cancellation of s- and d-errors.
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Publication: The manuscript has been submitted to The Proceedings of the National Academy of Sciences. A preprint is available on arXiv under the identifier arXiv:2409.07438.
Presenters
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Rohan Maniar
Tulane University
Authors
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Rohan Maniar
Tulane University
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Priyanka Bholanath Shukla
University of Pittsburgh
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Karl Johnson
University of Pittsburgh
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Koblar A Jackson
Central Michigan University
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John P Perdew
Tulane University