Material-based analysis of spin-orbital Mott insulators
Abstract
We present a framework for analyzing Mott insulators using a material-based tight-binding model. We start with a realistic multiorbital Hubbard model and derive an effective model for the localized electrons through the second-order perturbation theory with respect to intersite hopping. This effective model, known as the Kugel-Khomskii model, is described by SU() generators, where is the number of localized states. We solve this model by the mean-field theory that takes local correlations into account and reveal spin-orbital ordered states. To include spatial correlations, we apply the classical Monte Carlo based on the path-integral approach with SU() coherent states, and also derive the equation of motion for spin-orbital degrees of freedom. Our approach is applicable to any Mott insulator with reasonable computational cost. The -pyrochlore oxide is used here as demonstration.
Cite
@article{arxiv.2301.09824,
title = {Material-based analysis of spin-orbital Mott insulators},
author = {Ryuta Iwazaki and Hiroshi Shinaoka and Shintaro Hoshino},
journal= {arXiv preprint arXiv:2301.09824},
year = {2024}
}
Comments
10 pages, 5 figures