Rohan Maniar, Priyanka B. Shukla, J. Karl Johnson, Koblar A. Jackson, John P. Perdew
{"title":"Ionization energy: sd transfer error and Perdew-Zunger self-interaction correction energy penalty in 3d atoms","authors":"Rohan Maniar, Priyanka B. Shukla, J. Karl Johnson, Koblar A. Jackson, John P. Perdew","doi":"arxiv-2409.07438","DOIUrl":null,"url":null,"abstract":"To accurately describe the energetics of transition metal systems, density\nfunctional approximations (DFAs) must provide a balanced description of s- and\nd- electrons. One measure of this is the sd transfer error, which has\npreviously been defined as $E(\\mathrm{3d}^{n-1} \\mathrm{4s}^1)\n-E(\\mathrm{3d}^{n-2} \\mathrm{4s}^2)$. Theoretical concerns have been raised on\nthe validity of these results owing to the evaluation of excited-state energies\nusing ground-state DFAs. A more serious concern appears to be strong\ncorrelations in the $\\mathrm{4s}^2$ configuration. Here we define a\nground-state measure of the sd transfer error, based on the errors of s- and\nd-electron second ionization energies of the atoms, that effectively\ncircumvents the aforementioned problems. We find an improved performance as we\nmove from LSDA to PBE to r$^2$SCAN for first-row transition metal atoms.\nHowever, we found large (~ 2 eV) ground-state sd transfer errors when applying\na Perdew-Zunger self-interaction correction. This is attributed to an \"energy\npenalty\" associated with the noded 3d orbitals. A local scaling of the\nself-interaction correction to LSDA results in a cancellation of s- and\nd-errors.","PeriodicalId":501304,"journal":{"name":"arXiv - PHYS - Chemical Physics","volume":null,"pages":null},"PeriodicalIF":0.0000,"publicationDate":"2024-09-11","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"arXiv - PHYS - Chemical Physics","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/arxiv-2409.07438","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
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 $E(\mathrm{3d}^{n-1} \mathrm{4s}^1)
-E(\mathrm{3d}^{n-2} \mathrm{4s}^2)$. 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 $\mathrm{4s}^2$ 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 r$^2$SCAN 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.