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Combining the Δ-self-consistent-field and GW methods for predicting core electron binding energies in periodic solids

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Title: Combining the Δ-self-consistent-field and GW methods for predicting core electron binding energies in periodic solids
Authors: Kahk, JM
Lischner, J
Item Type: Journal Article
Abstract: For the computational prediction of core electron binding energies in solids, two distinct kinds of modeling strategies have been pursued: the Δ-Self-Consistent-Field method based on density functional theory (DFT), and the GW method. In this study, we examine the formal relationship between these two approaches and establish a link between them. The link arises from the equivalence, in DFT, between the total energy difference result for the first ionization energy, and the eigenvalue of the highest occupied state, in the limit of infinite supercell size. This link allows us to introduce a new formalism, which highlights how in DFT─even if the total energy difference method is used to calculate core electron binding energies─the accuracy of the results still implicitly depends on the accuracy of the eigenvalue at the valence band maximum in insulators, or at the Fermi level in metals. We examine whether incorporating a quasiparticle correction for this eigenvalue from GW theory improves the accuracy of the calculated core electron binding energies, and find that the inclusion of vertex corrections is required for achieving quantitative agreement with experiment.
Issue Date: 13-Jun-2023
Date of Acceptance: 1-May-2023
URI: http://hdl.handle.net/10044/1/104740
DOI: 10.1021/acs.jctc.3c00121
ISSN: 1549-9618
Publisher: American Chemical Society
Start Page: 3276
End Page: 3283
Journal / Book Title: Journal of Chemical Theory and Computation
Volume: 19
Issue: 11
Copyright Statement: © 2023 The Authors. Published by American Chemical Society. This work is published under a CC BY licence.
Publication Status: Published
Conference Place: United States
Online Publication Date: 2023-05-10
Appears in Collections:Materials
Faculty of Engineering



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