Magnetic States of the Two-Leg Ladder Alkali Metal Iron Selenides FeSe
arXiv:1205.3239 · doi:10.1103/PhysRevB.87.024404
Abstract
Recent neutron scattering experiments addressing the magnetic state of the two-leg ladder selenide compound BaFeSe have unveiled a dominant spin arrangement involving ferromagnetically ordered 22 iron-superblocks, that are antiferromagnetically coupled among them (the "block-AFM" state). Using the electronic five-orbital Hubbard model, first principles techniques to calculate the electronic hopping amplitudes between irons, and the real-space Hartree-Fock approximation to handle the many-body effects, here it is shown that the exotic block-AFM state is indeed stable at realistic electronic densities close to . Another state (the "CX" state) with parallel spins along the rungs and antiparallel along the legs of the ladders is close in energy. This state becomes stable in other portions of the phase diagrams, such as with hole doping, as also found experimentally via neutron scattering applied to KFeSe. In addition, the present study unveils other competing magnetic phases that could be experimentally stabilized varying either chemically or the electronic bandwidth by pressure. Similar results were obtained using two-orbital models, studied here via Lanczos and DMRG techniques. A comparison of the results obtained with the realistic selenides hoppings amplitudes for BaFeSe against those found using the hopping amplitudes for pnictides reveals several qualitative similarities, particularly at intermediate and large Hubbard couplings.
10 pages, 6 figures
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Cited by in corpus (8)
- BaFeSe: a high magnetic multiferroic with large ferrielectric polarization
- Sequential structural and antiferromagnetic transitions in BaFeSe under pressure
- The magnetic precursor of the pressure-induced superconductivity in Fe-ladder compound
- Non-local correlations in the orbital selective Mott phase of a one dimensional multi-orbital Hubbard model
- Pairing Tendencies in a Two-orbital Hubbard Model in One Dimension
- Coexistence of localized and itinerant electrons in BaFe2X3 (X = S and Se) revealed by photoemission spectroscopy
- Quantum phase transition between orbital-selective Mott states in Hund's metals
- Magnetic states of the five-orbital Hubbard model for one-dimensional iron-based superconductors