论文标题
RF电流和偏置场方向对磁性涡流结构中从线性到非线性旋转动力学的过渡
Effects of the rf current and bias field direction on the transition from linear to non-linear gyrotropic dynamics in magnetic vortex structures
论文作者
论文摘要
我们通过电检测和微磁模拟介绍了单个Permalloy磁盘中磁性涡流芯在单个Permalloy磁盘中的动态行为的频域研究。当激发非线性态度的涡流核心动力学时,整流的直流信号的线形揭示了共振峰分裂,这取决于激发幅度。使用微磁模拟,我们表明,在高激发功率上,峰分裂起源于纳秒时间尺度的涡流核心极性的准周期性切换。使用锁定检测,将整流电压集成在MS时间尺度上,以便在给定的参数范围内检测到两个谐振峰之间检测到的净信号。结果与平面静态场幅度对回转动力学的报道影响一致,并通过详细分析RF电流振幅的影响和平面内偏置磁场的方位角来补充它们。系统的表征表明,可以通过RF电流以及改变偏置磁场的大小和方向来控制从线性到非线性动力学状态的过渡。
We present a frequency-domain study of the dynamic behavior of a magnetic vortex core within a single Permalloy disk by means of electrical detection and micromagnetic simulations. When exciting the vortex core dynamics in a non-linear regime, the lineshape of the rectified dc signal reveals a resonance peak splitting which depends on the excitation amplitude. Using micromagnetic simulations, we show that at high excitation power the peak splitting originates from the nanosecond time scale quasi-periodic switching of the vortex core polarity. Using lock-in detection, the rectified voltage is integrated over a ms time scale, so that the net signal detected between the two resonant peaks for a given range of parameters cancels out. The results are in agreement with the reported effects of the in-plane static field magnitude on the gyration dynamics, and complement them by detailed analysis of the effects of the rf current amplitude and the azimuthal angle of the in-plane bias magnetic field. Systematic characterization shows that a transition from linear to nonlinear dynamical regime can be controlled by rf current as well as by varying the magnitude and the direction of the bias magnetic field.