Spin transfer torques and spin-dependent transport in a metallic F/AF/N tunneling junction
arXiv:1809.02950 · doi:10.1103/PhysRevB.98.014406
Abstract
We study spin-dependent electron transport through a ferromagnetic-antiferromagnetic-normal metal tunneling junction subject to a voltage or temperature bias, in the absence of spin-orbit coupling. We derive microscopic formulas for various types of spin torque acting on the antiferromagnet as well as for charge and spin currents flowing through the junction. The obtained results are applicable in the limit of slow magnetization dynamics. We identify a parameter regime in which an unconventional damping-like torque can become comparable in magnitude to the equivalent of the conventional Slonczewski's torque generalized to antiferromagnets. Moreover, we show that the antiferromagnetic sublattice structure opens up a channel of electron transport which does not have a ferromagnetic analogue and that this mechanism leads to a pronounced field-like torque. Both charge conductance and spin current transmission through the junction depend on the relative orientation of the ferromagnetic and the antiferromagnetic vectors (order parameters). The obtained formulas for charge and spin currents allow us to identify the microscopic mechanisms responsible for this angular dependence and to assess the efficiency of an antiferromagnetic metal acting as a spin current polarizer.
References in corpus (12)
- Writing and Reading antiferromagnetic MnAu: Néel spin-orbit torques and large anisotropic magnetoresistance
- Spin pumping and spin-transfer torques in antiferromagnets
- Phenomenology of Current-Induced Dynamics in Antiferromagnets
- Imaging current-induced switching of antiferromagnetic domains in CuMnAs
- Anti-damping spin transfer torque through epitaxial Nickel oxide
- Spin-transfer torques in anti-ferromagnetic metals from first principles
- Spin Transfer Torque in Antiferromagnetic Spin-Valves: From Clean to Disordered Regimes
- Spin-torque shot noise in magnetic tunnel junctions
- Green's function formalism for spin transport in metal-insulator-metal heterostructures
- Spin diffusion and torques in disordered antiferromagnets
- Antiferromagnetic anisotropy determination by spin Hall magnetoresistance
- Strong non-equilibrium effects in spin torque systems