English

Electronic correlation in nearly free electron metals with beyond-DFT methods

Strongly Correlated Electrons 2022-08-02 v2 Materials Science

Abstract

For more than three decades, nearly free electron elemental metals have been a topic of debate because the computed bandwidths are significantly wider in the local density approximation to density-functional theory (DFT) than indicated by angle-resolved photoemission (ARPES) experiments. Here, we systematically investigate this using first-principles calculations for alkali and alkaline-earth metals using DFT and various beyond-DFT methods such as meta-GGA, G0_0W0_0, hybrid functionals (YS-PBE0, B3LYP), and LDA+eDMFT. We find that the static non-local exchange, as partly included in the hybrid functionals, significantly increase the bandwidths even compared to LDA, while the G0_0W0_0 bands are only slightly narrower than in LDA. The agreement with the ARPES is best when the local approximation to the self-energy is used in the LDA+eDMFT method. We infer that even moderately correlated systems with partially occupied s-orbitals, which were assumed to approximate the uniform electron gas, are very well described in terms of short-range dynamical correlations that are only local to an atom.

Keywords

Cite

@article{arxiv.2101.03262,
  title  = {Electronic correlation in nearly free electron metals with beyond-DFT methods},
  author = {Subhasish Mandal and Kristjan Haule and Karin M. Rabe and David Vanderbilt},
  journal= {arXiv preprint arXiv:2101.03262},
  year   = {2022}
}
R2 v1 2026-06-23T21:56:16.602Z