Key Laboratory of Advanced Materials (MOE), School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China.
Department of Physics and Astronomy, University of California, Los Angeles, California 90095, USA.
Phys Rev Lett. 2018 May 18;120(20):207204. doi: 10.1103/PhysRevLett.120.207204.
We investigate the current-induced switching of the Néel order in NiO(001)/Pt heterostructures, which is manifested electrically via the spin Hall magnetoresistance. Significant reversible changes in the longitudinal and transverse resistances are found at room temperature for a current threshold lying in the range of 10^{7} A/cm^{2}. The order-parameter switching is ascribed to the antiferromagnetic dynamics triggered by the (current-induced) antidamping torque, which orients the Néel order towards the direction of the writing current. This is in stark contrast to the case of antiferromagnets such as Mn_{2}Au and CuMnAs, where fieldlike torques induced by the Edelstein effect drive the Néel switching, therefore resulting in an orthogonal alignment between the Néel order and the writing current. Our findings can be readily generalized to other biaxial antiferromagnets, providing broad opportunities for all-electrical writing and readout in antiferromagnetic spintronics.
我们研究了 NiO(001)/Pt 异质结构中奈尔有序的电流诱导反转,这一现象通过自旋霍尔磁电阻表现为电输运性质。在室温下,当电流阈值位于 10^{7} A/cm^{2}范围内时,我们发现纵向和横向电阻有显著的可逆变化。这种有序参数的反转归因于(电流诱导的)反铁磁阻尼转矩触发的反铁磁动力学,它使奈尔有序朝着写入电流的方向取向。这与 Mn_{2}Au 和 CuMnAs 等反铁磁体形成鲜明对比,在这些反铁磁体中,Edelstein 效应引起的场型转矩驱动奈尔反转,因此导致奈尔有序与写入电流之间呈正交排列。我们的发现可以很容易地推广到其他双轴反铁磁体,为反铁磁自旋电子学中的全电流写入和读出提供了广泛的机会。