Center for Nanometrology, Korea Research Institute of Standards and Science, Daejeon 305-340, Republic of Korea.
Physics Department, University of California at Berkeley, Berkeley, California 94720, U.S.A.
Sci Rep. 2014 Aug 22;4:6170. doi: 10.1038/srep06170.
Nonlinear dynamics of the magnetic vortex state in a circular nanodisk was studied under a perpendicular alternating magnetic field that excites the radial modes of the magnetic resonance. Here, we show that as the oscillating frequency is swept down from a frequency higher than the eigenfrequency, the amplitude of the radial mode is almost doubled to the amplitude at the fixed resonance frequency. This amplitude has a hysteresis vs. frequency sweeping direction. Our result showed that this phenomenon was due to a Duffing-type nonlinear resonance. Consequently, the amplitude enhancement reduced the vortex core-switching magnetic field to well below 10 mT. A theoretical model corresponding to the Duffing oscillator was developed from the Landau-Lifshitz-Gilbert equation to explore the physical origin of the simulation result. This work provides a new pathway for the switching of the magnetic vortex core polarity in future magnetic storage devices.
在垂直交变磁场下研究了圆形纳米盘中磁涡旋状态的非线性动力学,该磁场激发了磁共振的径向模式。在这里,我们表明,当振荡频率从高于本征频率的频率扫过,径向模式的幅度几乎增加到固定共振频率时的幅度的两倍。该幅度与频率扫描方向具有滞后性。我们的结果表明,这种现象是由于类杜芬型非线性共振引起的。因此,幅度增强将涡旋芯切换磁场降低到远低于 10 mT。从 Landau-Lifshitz-Gilbert 方程出发,建立了一个与杜芬振荡器对应的理论模型,以探索模拟结果的物理起源。这项工作为未来磁存储设备中磁涡旋芯极性的切换提供了新途径。