Itinerant ferromagnetism and intrinsic anomalous Hall effect in amorphous iron-germanium
Abstract
The amorphous iron-germanium system (-FeGe) lacks long-range structural order and hence lacks a meaningful Brillouin zone. The magnetization of \aFeGe is well explained by the Stoner model for Fe concentrations above the onset of magnetic order around , indicating that the local order of the amorphous structure preserves the spin-split density of states of the Fe- states sufficiently to polarize the electronic structure despite being a bad quantum number. Measurements reveal an enhanced anomalous Hall resistivity relative to crystalline FeGe; this is compared to density functional theory calculations of the anomalous Hall conductivity to resolve its underlying mechanisms. The intrinsic mechanism, typically understood as the Berry curvature integrated over occupied -states but shown here to be equivalent to the density of curvature integrated over occupied energies in aperiodic materials, dominates the anomalous Hall conductivity of -FeGe (). The density of curvature is the sum of spin-orbit correlations of local orbital states and can hence be calculated with no reference to -space. This result and the accompanying Stoner-like model for the intrinsic anomalous Hall conductivity establish a unified understanding of the underlying physics of the anomalous Hall effect in both crystalline and disordered systems.
Keywords
Cite
@article{arxiv.1908.06055,
title = {Itinerant ferromagnetism and intrinsic anomalous Hall effect in amorphous iron-germanium},
author = {D. S. Bouma and Z. Chen and B. Zhang and F. Bruni and M. E. Flatté and R. Streubel and L. -W. Wang and R. Q. Wu and F. Hellman},
journal= {arXiv preprint arXiv:1908.06055},
year = {2020}
}
Comments
11 pages, 10 figures