Current induced switching in Mn2Au from first principles
arXiv:2201.13137 · doi:10.1103/PhysRevB.105.174416
Abstract
It is well established that it is possible to switch certain antiferromagnets electrically, yet the interplay of Néel-spin-orbit torques and thermal activation is only poorly understood. Combining ab initio calculations and atomistic spin dynamics simulations we develop a multiscale model to study the current induced switching in Mn2Au. We compute from first principles the strength and direction of the electrically induced magnetic moments, caused by the Rashba--Edelstein effect, and take these into account in atomistic spin dynamics simulations. Our simulations reveal the switching paths as well as the time scales for switching. The size of the induced moments, however, turns out to be insufficient to lead to fully deterministic switching. Instead, we find that a certain degree of thermal activation is required to help overcoming the relevant energy barrier.
References in corpus (5)
- Writing and Reading antiferromagnetic MnAu: Néel spin-orbit torques and large anisotropic magnetoresistance
- Spin-orbit coupling induced anisotropy effects in bimetallic antiferromagnets: A route towards antiferromagnetic spintronics
- Imaging of current induced Néel vector switching in antiferromagnetic MnAu
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Cited by in corpus (5)
- Current-driven writing process in antiferromagnetic Mn2Au for memory applications
- Néel-Vector Switching and THz Spin-Wave Excitation in MnAu due to Femtosecond Spin-Transfer Torques
- Identifying Switching of Antiferromagnets by Spin-Orbit Torques
- Competition between terahertz magnetoelectric and Néel spin-orbit torque driven spin dynamics in metallic antiferromagnets
- Terahertz spin-orbit torque as a drive of spin dynamics in the insulating antiferromagnet CrO