Origin and Propagation of Spin-orbit Torques in Pt/Co/Cu/NiFe/Capping Multilayers
Yuming Bai, Rulin Tian, Yue Zhang, Tao Wang

TL;DR
This study investigates the origin and propagation of damping-like and field-like spin-orbit torques in complex multilayers, revealing distinct interfacial and bulk contributions, and providing insights for engineering spintronic devices.
Contribution
It introduces a novel measurement approach and analysis method to distinguish bulk and interfacial SOT contributions in multilayers, advancing understanding of spin transport mechanisms.
Findings
DL-SOT scales nearly linearly with 1/m, indicating rapid spin absorption at interfaces.
Finite interfacial contributions to DL-SOT are observed even as 1/m approaches zero.
FL-SOT exhibits a longer propagation length (~1.7 nm), suggesting extended spin dephasing across NiFe.
Abstract
Spin-orbit torque (SOT) enables efficient current-driven control of magnetization, offering a promising pathway toward low-power spintronic devices. However, the origin and propagation of both damping-like (DL) and field-like (FL) SOTs in complex multilayers remain unclear. Here, we investigate NiFe thickness-dependent SOT efficiencies in Ta/Pt/Co/Cu/NiFe/Cu/Capping multilayers (x = 15 nm; Capping = Pt, Al, and SiO2). By employing a spin rotation geometry, the perpendicularly magnetized Pt/Co/Cu stacks serve as a spin source introducing unconventional spin polarization orthogonal to the Oersted field, eliminating its contribution and enabling unambiguous separation of SOTs using planar Hall and polar MOKE measurements. To distinguish bulk and interfacial contributions, we introduce a sample-area-normalized moment m = mNiFe/S, accounting for thickness-dependent magnetization and…
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Taxonomy
TopicsMagnetic properties of thin films · Quantum and electron transport phenomena · Heusler alloys: electronic and magnetic properties
