Spin-Fluctuation-Driven Orbital Nematic Order in Ru-Oxides: Self-Consistent Vertex Correction Analysis for Two-Orbital Model
Strongly Correlated Electrons
2013-01-07 v2 Superconductivity
Abstract
To reveal the origin of the "nematic electronic fluid phase" in SrRuO, we apply the self-consistent vertex correction analysis to the ()-orbital Hubbard model. It is found that the Aslamazov-Larkin type vertex correction causes the strong coupling between spin and orbital fluctuations, which corresponds to the Kugel-Khomskii spin-orbital coupling in the local picture. Due to this mechanism, orbital nematic order with symmetry is induced by the magnetic quantum criticality in multiorbital systems, while this mechanism is ignored in the random-phase-approximation. The present study naturally explains the intimate relation between the magnetic quantum criticality and the nematic state in SrRuO and Fe-based superconductors.
Keywords
Cite
@article{arxiv.1209.3629,
title = {Spin-Fluctuation-Driven Orbital Nematic Order in Ru-Oxides: Self-Consistent Vertex Correction Analysis for Two-Orbital Model},
author = {Yusuke Ohno and Masahisa Tsuchiizu and Seiichiro Onari and Hiroshi Kontani},
journal= {arXiv preprint arXiv:1209.3629},
year = {2013}
}
Comments
5 pages, 3 figures