磁化
自旋电子学
凝聚态物理
交换偏差
铁磁性
纳秒
反铁磁性
切换时间
偏压
材料科学
铱
磁化动力学
克尔效应
物理
光电子学
化学
光学
电压
磁各向异性
磁场
激光器
非线性系统
催化作用
量子力学
生物化学
作者
Yuyan Wang,T. Taniguchi,Po-Hung Lin,Daniel Zicchino,Andreas Nickl,Jan Sahliger,Chih‐Huang Lai,Cheng Song,Huaqiang Wu,Qionghai Dai,C. H. Back
标识
DOI:10.1038/s41928-022-00870-3
摘要
Current-induced magnetization switching driven by spin–orbit torques on sub-nanosecond timescales could be used to create fast and low-power spintronic devices. The time-resolved detection and analysis of switching trajectories in ferromagnet/antiferromagnet exchange-biased structures are the key to designing spin–orbit torque devices with high speed, but insight remains limited. Here we report the time-resolved detection of spin–orbit torque switching of the magnetization and exchange bias in platinum/cobalt/iridium–manganese heterostructures. Using time-resolved magneto-optical Kerr microscopy, combined with micromagnetic simulations, we show that the ferromagnets, as well as interfacial antiferromagnetic spins and exchange bias, can be partially switched by sub-nanosecond current pulses, which allows the switching probabilities to be flexibly controlled at multiple levels. We also show that the spin–orbit-torque-induced switching of the exchange bias, which intimately depends on the current density, can stabilize multilevelled magnetization switching within sub-nanosecond current pulses. Time-resolved magneto-optical Kerr microscopy, combined with micromagnetic simulations, can be used to detect spin–orbit torque switching of the magnetization and exchange bias in platinum/cobalt/iridium–manganese heterostructures on sub-nanosecond timescales.
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