Spin-orbit torques in Co/Pt(111) and Mn/W(001) magnetic bilayers from first principles
Frank Freimuth, Stefan Bl\"ugel, Yuriy Mokrousov

TL;DR
This paper presents a first-principles theoretical framework for calculating spin-orbit torques in magnetic bilayers, revealing the distinct behaviors of even and odd components and their dependence on material and interface properties.
Contribution
It introduces a Green's function formalism for linear-response SOT calculations and applies it to Co/Pt and Mn/W bilayers, highlighting the different origins of torque components.
Findings
Even and odd SOT components are of comparable magnitude.
Odd SOT strongly depends on capping layers.
Even SOT is mainly mediated by spin currents.
Abstract
An applied electric current through a space-inversion asymmetric magnet induces spin-orbit torques (SOTs) on the magnetic moments, which holds much promise for future memory devices. We discuss general Green's function expressions suitable to compute the linear-response SOT in disordered ferromagnets. The SOT can be decomposed into an even and an odd component with respect to magnetization reversal, where in the limit of vanishing disorder the even SOT is given by the constant Berry curvature of the occupied states, while the odd part exhibits a divergence with respect to disorder strength. Within this formalism, we perform first principles density-functional theory calculations of the SOT in Co/Pt(111) and Mn/W(001) magnetic bilayers. We find the even and odd torque components to be of comparable magnitude. Moreover, the odd torque depends strongly on an additional capping layer, while…
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