English

Spin-orbit coupling and correlations in three-orbital systems

Strongly Correlated Electrons 2018-11-30 v2

Abstract

We investigate the influence of spin-orbit coupling λ\lambda in strongly-correlated multiorbital systems that we describe by a three-orbital Hubbard-Kanamori model on a Bethe lattice. We solve the problem at all integer fillings NN with the dynamical mean-field theory using the continuous-time hybridization expansion Monte Carlo solver. We investigate how the quasiparticle renormalization ZZ varies with the strength of spin-orbit coupling. The behavior can be understood for all fillings except N=2N=2 in terms of the atomic Hamiltonian (the atomic charge gap) and the polarization in the jj-basis due to spin-orbit induced changes of orbital degeneracies and the associated kinetic energy. At N=2N=2, λ\lambda increases ZZ at small UU but suppresses it at large UU, thus eliminating the characteristic Hund's metal tail in Z(U)Z(U). We also compare the effects of the spin-orbit coupling to the effects of a tetragonal crystal field. Although this crystal field also lifts the orbital degeneracy, its effects are different, which can be understood in terms of the different form of the interaction Hamiltonian expressed in the respective diagonal single-particle basis.

Keywords

Cite

@article{arxiv.1807.05106,
  title  = {Spin-orbit coupling and correlations in three-orbital systems},
  author = {Robert Triebl and Gernot J. Kraberger and Jernej Mravlje and Markus Aichhorn},
  journal= {arXiv preprint arXiv:1807.05106},
  year   = {2018}
}
R2 v1 2026-06-23T03:00:31.553Z