Exact results for itinerant ferromagnetism in a t2g orbital system on cubic and square lattices
Abstract
We study itinerant ferromagnetism in a t2g multi-orbital Hubbard system in the cubic lattice, which consists of three planar oriented orbital bands of dxy, dyz, and dzx. Electrons in each orbital band can only move within a two-dimensional plane in the three-dimensional lattice parallel to the corresponding orbital orientation. Electrons of different orbitals interact through the on-site multi-orbital interactions including Hund's coupling. The strong coupling limit is considered in which there are no doubly occupied orbitals but multiple on-site occupations are allowed. We show that, in the case in which there is one and only one hole for each orbital band in each layer parallel to the orbital orientation, the ground state is a fully spin-polarized itinerant ferromagnetic state, which is unique apart from the trivial spin degeneracy. When the lattice is reduced into a single two-dimensional layer, the dzx and dyz bands become quasi-one-dimensional while the dxy band remains two-dimensional. The ground state ferromagnetism also appears in the strong-coupling limit as a generalization of the double exchange mechanism. Possible applications to the systems of SrRuO3 and LaAlO3/SrTiO3 interface are discussed.
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