Tunable spin and orbital torques in Cu-based magnetic heterostructures
arXiv:2501.09458 · doi:10.1021/acs.nanolett.4c05170
Abstract
Current-induced torques originating from earth-abundant 3d elements offer a promising avenue for low-cost and sustainable spintronic memory and logic applications. Recently, orbital currents -- transverse orbital angular momentum flow in response to an electric field -- have been in the spotlight since they allow current-induced torque generation from 3d transition metals. Here, we report a comprehensive study of the current-induced spin and orbital torques in Cu-based magnetic heterostructures. We show that high torque efficiencies can be achieved in engineered Ni80Fe20/Cu bilayers where Cu is naturally oxidized, exceeding the ones found in the archetypical Co/Pt. Furthermore, we demonstrate sign and amplitude control of the damping-like torque by manipulating the oxidation state of Cu via solid-state gating. Our findings provide insights into the interplay between charge, spin, and orbital transport in Cu-based heterostructures and open the door to the development of gate-tunable spin-orbitronic devices.
21 pages, 5 figures, 13 pages SI
References in corpus (10)
- Magneto-ionic Control of Interfacial Magnetism
- Giant Orbital Hall Effect in Transition Metals: Origin of Large Spin and Anomalous Hall Effects
- Orbitronics: Orbital Currents in Solids
- Giant orbital Hall effect and orbital-to-spin conversion in 3d, 5d, and 4f metallic heterostructures
- Orbital Hanle Magnetoresistance in a 3d Transition Metal
- Fast magneto-ionic switching of interface anisotropy using yttria-stabilized zirconia gate oxide
- Unidirectional orbital magnetoresistance in light metal/ferromagnet bilayers
- Effects of Oxidation of Top and Bottom Interfaces on the Electric, Magnetic, and Spin-Orbit Torque Properties of Pt/Co/AlOx Trilayers
- Mitigation of Gilbert Damping in the CoFe/CuOx Orbital Torque System
- Tuning spin-orbit torques across the phase transition in VO/NiFe heterostructure