arXiv · 2104.05155
Intrinsic staggered spin-orbit torque for the electrical control of antiferromagnets -- application to CrI$_3$
Abstract
Spin-orbit torque enables the electrical control of the orientation of ferromagnets' or antiferromagnets' order parameter. In this work we consider antiferromagnets in which the magnetic sublattices are connected by inversion+time reversal symmetry, and in which the exchange and anisotropy energies are similar in magnitude. We identify the staggered dampinglike spin-orbit torque as the key mechanism for electrical excitation of the N\'eel vector for this case. To illustrate this scenario, we examine the 2-d Van der Waals antiferromagnetic bilayer \ch{CrI3}, in the $n$-doped regime. Using a combination of first-principles calculations of the spin-orbit torque and an analysis of the ensuing spin dynamics, we show that the deterministic electrical switching of the N\'eel vector is the result of dampinglike spin-orbit torque which is staggered on the magnetic sublattices.
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Fei Xue, Paul M. Haney. 2021-04-12. Intrinsic staggered spin-orbit torque for the electrical control of antiferromagnets -- application to CrI$_3$. https://doi.org/10.1103/physrevb.104.224414
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