Symmetry and magnitude of spin-orbit torques in ferromagnetic heterostructures
Kevin Garello, Ioan Mihai Miron, Can Onur Avci, Frank Freimuth, Yuriy, Mokrousov, Stefan Bl\"ugel, St\'ephane Auffret, Olivier Boulle, Gilles, Gaudin, and Pietro Gambardella

TL;DR
This paper provides a comprehensive measurement and analysis of spin-orbit torques in ferromagnetic heterostructures, revealing complex behaviors beyond traditional models and offering a versatile method for characterizing SOTs.
Contribution
It introduces a universal scheme for measuring SOTs in arbitrary magnetization orientations and clarifies the symmetry and origin of different SOT components in heterostructures.
Findings
Identification of two distinct SOTs with different symmetry properties.
The even SOT exceeds expectations from the spin Hall effect.
The odd SOT includes a strongly anisotropic component not explained by simple Rashba models.
Abstract
Current-induced spin torques are of great interest to manipulate the orientation of nanomagnets without applying external magnetic fields. They find direct application in non-volatile data storage and logic devices, and provide insight into fundamental processes related to the interdependence between charge and spin transport. Recent demonstrations of magnetization switching induced by in-plane current injection in ferromagnetic heterostructures have drawn attention to a class of spin torques based on orbital-to-spin momentum transfer, which is alternative to pure spin transfer torque (STT) between noncollinear magnetic layers and amenable to more diversified device functions. Due to the limited number of studies, however, there is still no consensus on the symmetry, magnitude, and origin of spin-orbit torques (SOTs). Here we report on the quantitative vector measurement of SOTs in…
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