Origin of the Magnetic and Orbital ordering in -SrCrO
arXiv:2010.10342 · doi:10.1103/PhysRevB.103.045115
Abstract
Motivated by recent experimental progress in transition metal oxides with the KNiF structure, we investigate the magnetic and orbital ordering in -SrCrO. Using first principles calculations, first we derive a three-orbital Hubbard model, which reproduces the {\it ab initio} band structure near the Fermi level. The unique reverse splitting of orbitals in -SrCrO, with the electronic configuration for the Cr oxidation state, opens up the possibility of orbital ordering in this material. Using real-space Hartree-Fock for multi-orbital systems, we constructed the ground-state phase diagram for the two-dimensional compound -SrCrO. We found stable ferromagnetic, antiferromagnetic, antiferro-orbital, and staggered orbital stripe ordering in robust regions of the phase diagram. Furthermore, using the density matrix renormalization group method for two-leg ladders with the realistic hopping parameters of -SrCrO, we explore magnetic and orbital ordering for experimentally relevant interaction parameters. Again, we find a clear signature of antiferromagnetic spin ordering along with antiferro-orbital ordering at moderate to large Hubbard interaction strength. We also explore the orbital-resolved density of states with Lanczos, predicting insulating behavior for the compound -SrCrO, in agreement with experiments. Finally, an intuitive understanding of the results is provided based on a hierarchy between orbitals, with driving the spin order, while electronic repulsion and the effective one dimensionality of the movement within the and orbitals driving the orbital order.
13 pages, 12 figures
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