Publication | Open Access
Spin–orbit torque engineering in β-W/CoFeB heterostructures with W–Ta or W–V alloy layers between β-W and CoFeB
22
Citations
34
References
2021
Year
Magnetic PropertiesEngineeringSpin–orbit Torque EngineeringSpintronic MaterialMagnetic MaterialsSpin PhenomenonMagnetoresistanceMagnetismNew Materialβ-W/cofeb HeterostructuresMaterials ScienceSpin-orbit EffectsSpin-charge-orbit ConversionPhysicsMagnetic MaterialSpintronicsFerromagnetismSpin-orbit TorqueNatural SciencesSpin–orbit TorqueCondensed Matter PhysicsApplied PhysicsMultilayer HeterostructuresSpin Hall Conductivity
Abstract The spin–orbit torque (SOT) resulting from a spin current generated in a nonmagnetic transition metal layer offers a promising magnetization switching mechanism for spintronic devices. To fully exploit this mechanism, in practice, materials with high SOT efficiencies are indispensable. Moreover, new materials need to be compatible with semiconductor processing. This study introduces W–Ta and W–V alloy layers between nonmagnetic β-W and ferromagnetic CoFeB layers in β-W/CoFeB/MgO/Ta heterostructures. We carry out first-principles band structure calculations for W–Ta and W–V alloy structures to estimate the spin Hall conductivity. While the predicted spin Hall conductivity values of W–Ta alloys decrease monotonically from −0.82 × 10 3 S/cm for W 100 at% as the Ta concentration increases, those of W–V alloys increase to −1.98 × 10 3 S/cm for W 75 V 25 at% and then gradually decrease. Subsequently, we measure the spin Hall conductivities of both alloys. Experimentally, when β-W is alloyed with 20 at% V, the absolute value of the spin Hall conductivity considerably increases by 36% compared to that of the pristine β-W. We confirm that the W–V alloy also improves the SOT switching efficiency by approximately 40% compared to that of pristine β-W. This study demonstrates a new material that can act as a spin current-generating layer, leading to energy-efficient spintronic devices.
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