English

Nonlocal Coulomb interaction and spin-freezing crossover as a route to valence-skipping charge order

Strongly Correlated Electrons 2020-03-16 v3

Abstract

Multiorbital systems away from global half-filling host intriguing physical properties promoted by Hund's coupling. Despite increasing awareness of this regime dubbed Hund's metal, effect of nonlocal interaction is still elusive. Here we study a three-orbital model with 1/31/3 filling (two electrons per site) including the intersite Coulomb interaction (VV). Using the GWGW plus extended dynamical mean-field theory, the valence-skipping charge order transition is shown to be driven by VV. Most interestingly, the instability to this transition is significantly enhanced in the spin-freezing crossover regime, thereby lowering the critical VV to the formation of charge order. This behavior is found to be closely related to the population profile of the atomic multiplet states in the spin-freezing regime. In this regime, maximum spin states are dominant in each total charge subspace with substantial amount of one- and three-electron occupations, which leads to almost equal population of one- and the maximum spin three-electron state. Our finding unveils another feature of the Hund's metal, and has potential implications for the broad range of multiorbital systems as well as the recently discovered charge order in iron-pnictides.

Keywords

Cite

@article{arxiv.1908.08723,
  title  = {Nonlocal Coulomb interaction and spin-freezing crossover as a route to valence-skipping charge order},
  author = {Siheon Ryee and Patrick Sémon and Myung Joon Han and Sangkook Choi},
  journal= {arXiv preprint arXiv:1908.08723},
  year   = {2020}
}