Spin transfer torques due to the bulk states of topological insulators
James H. Cullen, Rhonald Burgos Atencia, Dimitrie Culcer

TL;DR
This paper investigates the contribution of bulk states in topological insulators to spin transfer torques, revealing that they generate a distinct torque component that could dominate in real samples, unlike surface states.
Contribution
It demonstrates that bulk states produce a spin transfer torque due to magnetisation inhomogeneity, a previously overlooked effect in topological insulators.
Findings
Bulk states do not produce spin-orbit torque on homogeneous magnetisation.
Bulk states generate a spin transfer torque from magnetisation gradients.
Experimental signatures distinguish bulk from surface state contributions.
Abstract
Spin torques at topological insulator (TI)/ferromagnet interfaces have received considerable attention in recent years with a view towards achieving full electrical manipulation of magnetic degrees of freedom. The most important question in this field concerns the relative contributions of bulk and surface states to the spin torque, a matter that remains incompletely understood. Whereas the surface state contribution has been extensively studied, the contribution due to the bulk states has received comparatively little attention. Here we study spin torques due to TI bulk states and show that: (i) There is no spin-orbit torque due to the bulk states on a homogeneous magnetisation, in contrast to the surface states, which give rise to a spin-orbit torque via the well-known Edelstein effect. (ii) The bulk states give rise to a spin transfer torque (STT) due to the inhomogeneity of the…
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Taxonomy
TopicsMagnetic properties of thin films · Topological Materials and Phenomena · Magnetic and transport properties of perovskites and related materials
