6533b861fe1ef96bd12c4fe1

RESEARCH PRODUCT

Spin-orbit-coupling induced torque in ballistic domain walls: equivalence of charge-pumping and nonequilibrium magnetization formalisms

Zhe YuanZhe YuanZhe YuanPaul J. Kelly

subject

PhysicsCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physicsFermi levelNon-equilibrium thermodynamicsFOS: Physical sciences02 engineering and technologyElectronSpin–orbit interaction021001 nanoscience & nanotechnologyThermal conduction01 natural sciencesMagnetizationsymbols.namesake0103 physical sciencesMesoscale and Nanoscale Physics (cond-mat.mes-hall)symbolsTorque010306 general physics0210 nano-technologyAnisotropy

description

To study the effect of spin-orbit coupling (SOC) on spin-transfer torque in magnetic materials, we have implemented two theoretical formalisms that can accommodate SOC. Using the "charge-pumping" formalism, we find two contributions to the out-of-plane spin-transfer torque parameter $\beta$ in ballistic Ni domain walls (DWs). For short DWs, the nonadiabatic reflection of conduction electrons caused by the rapid spatial variation of the exchange potential results in an out-of-plane torque that increases rapidly with decreasing DW length. For long DWs, the Fermi level conduction channel anisotropy that gives rise to an intrinsic DW resistance in the presence of SOC leads to a linear dependence of $\beta$ on the DW length. To understand this counterintuitive divergence of $\beta$ in the long DW limit, we use the "nonequilibrium magnetization" formalism to examine the spatially resolved spin-transfer torque. The SOC-induced out-of-plane torque in ballistic DWs is found to be quantitatively consistent with the values obtained using the charge-pumping calculations indicating the equivalence of the two theoretical methods.

https://dx.doi.org/10.48550/arxiv.1602.06676