English

Charge transfer model for the electronic structure of layered ruthenates

Strongly Correlated Electrons 2015-04-28 v1 Materials Science

Abstract

Motivated by the earlier experimental results and \textit{ab initio} studies on the electronic structure of layered ruthenates (Sr2_2RuO4_4 and Ca2_2RuO4_4) we introduce and investigate the multiband dpd-p charge transfer model describing a single RuO4_4 layer, similar to the charge transfer model for a single CuO2_2 plane including apical oxygen orbitals in high TcT_c cuprates. The present model takes into account nearest-neighbor anisotropic ruthenium-oxygen dpd-p and oxygen-oxygen ppp-p hopping elements, crystal-field splittings and spin-orbit coupling. The intraorbital Coulomb repulsion and Hund's exchange are defined not only at ruthenium but also at oxygen ions. Our results demonstrate that the RuO4_4 layer cannot be regarded to be a pure ruthenium t2gt_{2g} system. We examine a different scenario in which ruthenium ege_g orbitals are partly occupied and highlight the significance of oxygen orbitals. We point out that the predictions of an idealized model based on ionic configuration (with n0=4+4×6=28n_0=4+4\times 6=28 electrons per RuO4_4 unit) do not agree with the experimental facts for Sr2_2RuO4_4 which support our finding that the electron number in the dpd-p states is significantly smaller. In fact, we find the electron occupation of dd and pp orbitals for a single RuO4_4 unit n=28xn=28-x, being smaller by at least 1--1.5 electrons from that in the ionic model and corresponding to self-doping with x1.5x\simeq 1.5.

Keywords

Cite

@article{arxiv.1504.06850,
  title  = {Charge transfer model for the electronic structure of layered ruthenates},
  author = {Krzysztof Rościszewski and Andrzej M. Oleś},
  journal= {arXiv preprint arXiv:1504.06850},
  year   = {2015}
}

Comments

12 pages, 3 figures