Magnetocrystalline anisotropy of Laves phase FeTaW from first principles - the effect of 3d-5d hybridisation
arXiv:1612.06802 · doi:10.1103/PhysRevB.96.064422
Abstract
The magnetic properties of FeTa and FeW in the hexagonal Laves phase are computed using density functional theory in the generalised gradient approximation, with the full potential linearised augmented plane wave method. The alloy FeTaW is studied using the virtual crystal approximation to treat disorder. FeTa is found to be ferromagnetic with a saturation magnetization of while, in contrast to earlier computational work, FeW is found to be ferrimagnetic with . The transition from the ferri- to the ferromagnetic state occurs for . The magnetocrystalline anisotropy energy (MAE) is calculated to for FeTa and for FeW. The MAE is found to be smaller for all values in FeTaW than for the end compounds and it is negative (in-plane anisotropy) for . The MAE is carefully analysed in terms of the electronic structure. Even though there are weak 5d contributions to the density of states at the Fermi energy in both end compounds, a reciprocal space analysis, using the magnetic force theorem, reveals that the MAE originates mainly from regions of the Brillouin zone with strong 3d-5d hybridisation near the Fermi energy. Perturbation theory and its applicability in relation to the MAE is discussed.
12 pages, 6 figures, 4 tables
References in corpus (4)
- Electronic structure and magnetic properties of L1_0 binary alloys
- Magnetic properties of (FeCo)B alloys and the effect of doping by 5 elements
- Magnetic anisotropy energy of disordered tetragonal Fe-Co systems from ab initio alloy theory
- Increased magnetocrystalline anisotropy in epitaxial Fe-Co-C thin films with spontaneous strain
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