Ternary iron selenide KFeSe is an antiferromagnetic semiconductor
arXiv:1102.2215 · doi:10.1103/PhysRevB.83.233205
Abstract
We have studied electronic and magnetic structures of KFeSe by performing the first-principles electronic structure calculations. The ground state of the Fe-vacancies ordered KFeSe is found to be a quasi-two-dimensional blocked checkerboard antiferromagnetic (AFM) semiconductor with an energy gap of 594 meV and a large ordering magnetic moment of 3.37 for each Fe atom, in excellent agreement with the neutron scattering measurement. The underlying mechanism is the chemical-bonding-driven tetramer lattice distortion. KFeSe with finite is a doped AFM semiconductor with low conducting carrier concentration which is approximately proportional to the excess potassium content, consistent qualitatively with the infrared observation. Our study reveals the importance of the interplay between antiferromagnetism and superconductivity in these materials. This suggests that KFeSe, instead of KFeSe, should be regarded as a parent compound from which the superconductivity emerges upon electron or hole doping.
4 pages and 6 figures; add new calculations and discussion about electron- or hole- doping effect upon AFM semiconductor K0.8Fe1.6Se2
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Cited by in corpus (10)
- Phase relations in K_xFe_{2-y}Se_2 and the structure of superconducting K_xFe_2Se_2 via high-resolution synchrotron diffraction
- Structure, magnetic order and excitations in the 245 family of Fe-based superconductors
- Effective doping and suppression of Fermi surface reconstruction via Fe vacancy disorder in KxFe2-ySe2
- Optical conductivity of iron-based superconductors
- Spin reorientation in TlFe1.6Se2 with complete vacancy ordering
- Coexistence of different electronic phases in the K0.8Fe1.6Se2 superconductor: a bulk-sensitive hard x-rays spectroscopy study
- Magnetism of the Fe and Ce sublattices in CeOFeSe: a combined neutron powder diffraction, inelastic neutron scattering and density functional study
- High-pressure single-crystal neutron scattering study of magnetic and Fe vacancy orders in (Tl,Rb)2Fe4Se5 superconductor
- Direct observation of fragile Mott insulators on plaquette Hubbard lattices
- Paramagnetic spin excitations in insulating RbFeSe