Density matrix renormalization group study of a three-orbital Hubbard model with spin-orbit coupling in one dimension
Abstract
Using the Density Matrix Renormalization Group technique we study the effect of spin-orbit coupling on a three-orbital Hubbard model in the sector and in one dimension. Fixing the Hund coupling to a robust value compatible with some multiorbital materials, we present the phase diagram varying the Hubbard and spin-orbit coupling , at zero temperature. Our results are shown to be qualitatively similar to those recently reported using the Dynamical Mean Field Theory in higher dimensions, providing a robust basis to approximate many-body techniques. Among many results, we observe an interesting transition from an orbital-selective Mott phase to an excitonic insulator with increasing at intermediate . In the strong coupling limit, we find a non-magnetic insulator with an effective angular momentum near the excitonic phase, smoothly connected to the regime. We also provide a list of quasi-one dimensional materials where the physics discussed in this publication could be realized.
Keywords
Cite
@article{arxiv.1707.04313,
title = {Density matrix renormalization group study of a three-orbital Hubbard model with spin-orbit coupling in one dimension},
author = {Nitin Kaushal and Jacek Herbrych and Alberto Nocera and Gonzalo Alvarez and Adriana Moreo and F. A. Reboredo and Elbio Dagotto},
journal= {arXiv preprint arXiv:1707.04313},
year = {2017}
}