Nonperturbative approach to interfacial spin-orbit torques induced by Rashba effect
Alessandro Veneri, David T. S. Perkins, and Aires Ferreira

TL;DR
This paper develops a nonperturbative linear response theory to explain interfacial spin-orbit torques in Rashba systems, revealing impurity scattering's role in generating damping-like SOTs beyond perturbative predictions.
Contribution
It introduces a nonperturbative approach to model interfacial SOTs, highlighting the significance of skew scattering and impurity effects in generating damping-like torques.
Findings
Damping-like SOTs can reach up to 7% efficiency of field-like torque.
Impurity scattering induces nonzero spin polarization components along all directions.
Bulk spin Hall effects are not necessary for damping-like SOT generation in ultra-thin systems.
Abstract
Current-induced spin-orbit torque (SOT) in normal metal/ferromagnet (NM/FM) bilayers bears great promise for technological applications, but the microscopic origin of purely interfacial SOTs in ultra-thin systems is not yet fully understood. Here, we show that a linear response theory with a nonperturbative treatment of spin-dependent interactions and impurity scattering potential predicts damping-like SOTs that are strictly absent in perturbative approaches. The technique is applied to a two-dimensional Rashba-coupled ferromagnet (the paradigmatic model of a NM/FM interface), where higher-order scattering processes encoding skew scattering from nonmagnetic impurities allow for current-induced spin polarization with nonzero components along all spatial directions. This is in stark contrast to previous results of perturbative methods (neglecting skew scattering), which predict a coplanar…
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Taxonomy
TopicsMagnetic properties of thin films · Quantum and electron transport phenomena · Magnetic Field Sensors Techniques
