Theory of metallic double perovskites with spin orbit coupling and strong correlations; application to ferrimagnetic Ba2FeReO6
A. M. Cook, A. Paramekanti

TL;DR
This paper develops a theoretical model for Ba2FeReO6, a ferrimagnetic double perovskite, demonstrating how strong correlations and spin-orbit coupling lead to half-metallicity, orbital magnetization, Weyl nodes, and a predicted anomalous Hall effect.
Contribution
The work introduces a comprehensive model incorporating strong correlations and spin-orbit coupling to explain experimental observations and predict new phenomena in 4d/5d double perovskites.
Findings
Strong correlations on Re are crucial for half-metallicity.
The model reproduces key experimental magnetic properties.
Predicted Weyl nodes and anomalous Hall effect in doped Ba2FeReO6.
Abstract
We consider a model of the double perovskite Ba2FeReO6, a room temperature ferrimagnet with correlated and spin-orbit coupled Re t2g electrons moving in the background of Fe moments stabilized by Hund's coupling. We show that for such 3d/5d double perovskites, strong correlations on the 5d-element (Re) are essential in driving a half-metallic ground state. Incorporating both strong spin-orbit coupling and the Hubbard repulsion on Re leads to a band structure consistent with ab initio calculations. Using our model, we find a large spin polarization at the Fermi level, and obtain a semi-quantitative understanding of the saturation magnetization of Ba2FeReO6, as well as X-ray magnetic circular dichroism data indicating a significant orbital magnetization. Based on the orbital populations obtained in our theory, we predict a specific doping dependence to the tetragonal distortion…
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