English

Single-site orthogonalization for first-principles computations of exchange coupling constants

Materials Science 2020-05-21 v1

Abstract

For accurate first-principles computations of exchange coupling constants JijJ_{ij} by the Liechtenstein method with localized basis sets, we developed a scheme using the single-site orthogonalization (SO). In contrast to the non-orthogonal (NO) scheme, where the basis set is used to compute JijJ_{ij} without modification, and the L\"owdin orthogonalization (LO) scheme, the SO scheme exhibits much less dependence of JijJ_{ij} on the choice of the basis set. The SO scheme achieves convergence of JijJ_{ij} for bcc Fe, hcp Co, and fcc Ni with an increase in the number of the basis set, while the NO and LO schemes result in the fluctuation depending on the basis set. This improvement by the SO scheme is attributed to the removal of orbital overlaps with avoiding ill-defined single-site effective potentials. We further improve the SO scheme by introducing appropriate spin population, so that the SO with spin-population scaling (SOS) scheme can provide converged Curie temperatures for transition metals. Moreover, negative values of JijJ_{ij} for dhcp Nd and rhombohedral Sm obtained by the SOS scheme can coincide with the experimentally-found magnetic order that cannot be reproduced by positive sets of JijJ_{ij}.

Keywords

Cite

@article{arxiv.2005.09886,
  title  = {Single-site orthogonalization for first-principles computations of exchange coupling constants},
  author = {Asako Terasawa and Sonju Kou and Taisuke Ozaki and Yoshihiro Gohda},
  journal= {arXiv preprint arXiv:2005.09886},
  year   = {2020}
}

Comments

9 pages, 5 figures

R2 v1 2026-06-23T15:40:47.335Z