Spin-Hall Torques Generated by Rare-Earth (Lanthanide) Thin Films
arXiv:1612.01927 · doi:10.1103/PhysRevB.95.064412
Abstract
We report an initial experimental survey of spin-Hall torques generated by the rare-earth metals Gd, Dy, Ho, and Lu, along with comparisons to first-principles calculations of their spin Hall conductivities. Using spin torque ferromagnetic resonance (ST-FMR) measurements and DC-biased ST-FMR, we estimate lower bounds for the spin-Hall torque ratio, , of 0.04 for Gd, 0.05 for Dy, 0.14 for Ho, and 0.014 for Lu. The variations among these elements are qualitatively consistent with results from first principles (density functional theory, DFT, in the local density approximation with a Hubbard-U correction). The DFT calculations indicate that the spin Hall conductivity is enhanced by the presence of the partially-filled orbitals in Dy and Ho, which suggests a strategy to further strengthen the contribution of the orbitals to the spin Hall effect by shifting the electron chemical potential.
13 pages, 11 figures
References in corpus (8)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Study of Intrinsic Spin Hall Effect and Orbital Hall Effect in 4d- and 5d- Transition Metals
- Giant Orbital Hall Effect in Transition Metals: Origin of Large Spin and Anomalous Hall Effects
- Y3Fe5O12 Spin Pumping for Quantitative Understanding of Pure Spin Transport and Spin Hall Effect in a Broad Range of Materials
- Study of intrinsic spin and orbital Hall effects in Pt based on a (6s, 6p, 5d) tight-binding model
- Intrinsic Spin and Orbital Hall Effects in Heavy Fermion Systems
- Intrinsic spin Hall effect in noncubic crystals
- Extrinsic Spin Hall Effect Due to Transition-Metal Impurities