First-principles quantum transport modeling of spin-transfer and spin-orbit torques in magnetic multilayers
arXiv:1801.05793 · doi:10.1007/978-3-319-50257-1_112-1
Abstract
We review a unified approach for computing: (i) spin-transfer torque in magnetic trilayers like spin-valves and magnetic tunnel junction, where injected charge current flows perpendicularly to interfaces; and (ii) spin-orbit torque in magnetic bilayers of the type ferromagnet/spin-orbit-coupled-material, where injected charge current flows parallel to the interface. Our approach requires to construct the torque operator for a given Hamiltonian of the device and the steady-state nonequilibrium density matrix, where the latter is expressed in terms of the nonequilibrium Green's functions and split into three contributions. Tracing these contributions with the torque operator automatically yields field-like and damping-like components of spin-transfer torque or spin-orbit torque vector, which is particularly advantageous for spin-orbit torque where the direction of these components depends on the unknown-in-advance orientation of the current-driven nonequilibrium spin density in the presence of spin-orbit coupling. We provide illustrative examples by computing spin-transfer torque in a one-dimensional toy model of a magnetic tunnel junction and realistic Co/Cu/Co spin-valve, both of which are described by first-principles Hamiltonians obtained from noncollinear density functional theory calculations; as well as spin-orbit torque in a ferromagnetic layer described by a tight-binding Hamiltonian which includes spin-orbit proximity effect within ferromagnetic monolayers assumed to be generated by the adjacent monolayer transition metal dichalcogenide.
22 pages, 9 figures, PDFLaTeX; prepared for Springer Handbook of Materials Modeling, Volume 2 Applications: Current and Emerging Materials
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- Resonant photovoltaic effect in doped magnetic semiconductors
- Interfacial contributions to spin-orbit torque and magnetoresistance in ferromagnet/heavy-metal bilayers
- Quantum spin-transfer torque induced nonclassical magnetization dynamics and electron-magnetization entanglement
- Spin-Hall effect due to the bulk states of topological insulators: Extrinsic contribution to the conserved spin current
- Effect of interfacial intermixing on spin-orbit torque in Co/Pt bilayers
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- Spin-orbit torques from topological insulator surface states: Effect of extrinsic spin-orbit scattering on an out-of-plane magnetization
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- First-principles calculations of spin-orbit torques in MnAu/heavy-metal bilayers
- Reconciling Kubo and Keldysh Approaches to Fermi-Sea-Dependent Nonequilibrium Observables: Application to Spin Hall Current and Spin-Orbit Torque in Spintronics