Meer Hendrik, Schreiber Felix, Schmitt Christin, Ramos Rafael, Saitoh Eiji, Gomonay Olena, Sinova Jairo, Baldrati Lorenzo, Kläui Mathias
Institute of Physics, Johannes Gutenberg-University Mainz, 55128 Mainz, Germany.
WPI-Advanced Institute for Materials Research, Tohoku University, Sendai 980-8577, Japan.
Nano Lett. 2021 Jan 13;21(1):114-119. doi: 10.1021/acs.nanolett.0c03367. Epub 2020 Dec 11.
We unravel the origin of current-induced magnetic switching of insulating antiferromagnet/heavy metal systems. We utilize concurrent transport and magneto-optical measurements to image the switching of antiferromagnetic domains in specially engineered devices of NiO/Pt bilayers. Different electrical pulsing and device geometries reveal different final states of the switching with respect to the current direction. We can explain these through simulations of the temperature-induced strain, and we identify the thermomagnetoelastic switching mechanism combined with thermal excitations as the origin, in which the final state is defined by the strain distributions and heat is required to switch the antiferromagnetic domains. We show that such a potentially very versatile noncontact mechanism can explain the previously reported contradicting observations of the switching final state, which were attributed to spin-orbit torque mechanisms.
我们揭示了绝缘反铁磁体/重金属系统中电流诱导磁开关的起源。我们利用同步输运和磁光测量来成像在特别设计的NiO/Pt双层器件中反铁磁畴的开关。不同的电脉冲和器件几何结构揭示了相对于电流方向的不同开关最终状态。我们可以通过温度诱导应变的模拟来解释这些现象,并且我们确定热磁弹性开关机制与热激发相结合是其起源,其中最终状态由应变分布定义,并且切换反铁磁畴需要热量。我们表明,这种潜在的非常通用的非接触机制可以解释先前报道的关于开关最终状态的相互矛盾的观察结果,这些结果曾被归因于自旋轨道转矩机制。