First-principles study of the inversion thermodynamics and electronic structure of Fe (thio)spinels ( Cr, Mn, Co, Ni; O, S)
arXiv:1504.00268 · doi:10.1103/PhysRevB.91.195106
Abstract
Fe spinels, where is a transition metal and is oxygen or sulfur, are candidate materials for spin filters, one of the key devices in spintronics. We present here a computational study of the inversion thermodynamics and the electronic structure of these (thio)spinels for Cr, Mn, Co, Ni, using calculations based on the density functional theory with on-site Hubbard corrections (DFT+). The analysis of the configurational free energies shows that different behaviour is expected for the equilibrium cation distributions in these structures: FeCr and FeMnS are fully normal, FeNi and FeCoS are intermediate, and FeCoO and FeMnO are fully inverted. We have analyzed the role played by the size of the ions and by the crystal field stabilization effects in determining the equilibrium inversion degree. We also discuss how the electronic and magnetic structure of these spinels is modified by the degree of inversion, assuming that this could be varied from the equilibrium value. We have obtained electronic densities of states for the completely normal and completely inverse cation distribution of each compound. FeCr, FeMn, FeCoO and FeNiO are half-metals in the ferrimagnetic state when Fe is in tetrahedral positions. When is filling the tetrahedral positions, the Cr-containing compounds and FeMnO are half-metallic systems, while the Co and Ni spinels are insulators. The Co and Ni sulfide counterparts are metallic for any inversion degree together with the inverse FeMnS. Our calculations suggest that the spin filtering properties of the Fe (thio)spinels could be modified via the control of the cation distribution through variations in the synthesis conditions.
35 pages, 6 figures, 5 tables (Published in Physical Review B 91, 195106 (2015))
References in corpus (4)
- Restoring the density-gradient expansion for exchange in solids and surfaces
- Generalized gradient approximation for solids and their surfaces
- Electronic structure of normal and inverse spinel ferrites from first principles
- Atomically Resolved Spin-Dependent Tunnelling on the Oxygen-Terminated Fe3O4 (111)
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- Energy Eigenstates of Electrons, Magnons and Phonons in FeO (magnetite), MnFeO (jacobsite), and mixed Mn-Zn ferrites