论文标题

通过广义的摆模模型分析的PERP-STNO对的滞后相互同步

Hysteretic Mutual Synchronization of PERP-STNO Pairs Analyzed by a Generalized Pendulum-like Model

论文作者

Chen, Hao-Hsuan, Lee, Ching-Ming, Zeng, Lang, Zhao, Wei-sheng, Chang, Ching-Ray

论文摘要

目前,Kuramoto模型是分析与相互作用结合的自旋变速纳米振荡器(STNOS)的同步的标准且广泛接受的理论方法。然而,在许多类型的STNOS同步中存在的振荡性衰减制度以及初始条件(IC)依赖性(滞后)无法通过此模型来解释。为了更精确地阐明这两种现象背后的物理机制,在本文中,我们基于非线性自动启动器的两个共同特征开发了一个普遍的摆模模型:一种是动态状态振幅/能量的稳定性;另一个是振荡器的非线性动态状态能量。在这个新模型中,我们发现具有足够动能的牛顿样粒子可以克服循环潜力的障碍,以发展为稳定的异步(AS)状态,从而导致(IC)依赖性同步。此外,由于动能的存在,该粒子还可以在相锁定电位的最小值周围振荡,从而导致振荡性衰减状态。因此,在这项工作中,我们采用了这个新模型来分析垂直平面(perp) - stno对的IC依赖性相互同步,然后我们建议可以通过使用磁性偶极耦合来控制初始条件以避免这种现象。

At present, the Kuramoto model is the standard and widely accepted theoretical approach for analyzing the synchronization of spin-torque nano-oscillators (STNOs) coupled by an interaction. Nevertheless, the oscillatory decaying regime as well as the initial condition (IC)-dependence (hysteretic) that exist in the synchronization of many types of STNOs cannot be explained by this model. In order to more precisely elucidate the physical mechanisms behind the two phenomena, in this paper we develop a generalized pendulum-like model based on the two common features of non-linear auto-oscillators: one is the stability of the amplitude/energy of dynamic states; the other is the non-linear dynamic state energy of oscillators. In this new model, we find that the Newtonian-like particle with sufficient kinetic energy can overcome the barrier of phase-locking potential to evolve into a stable asynchronization (AS) state, leading to the (IC)-dependent synchronization. Furthermore, due to the presence of the kinetic energy, this particle can also oscillate around the minima of the phase-locking potential, leading to the oscillatory decaying regime. Thereby, in this work, we adopt this new model to analyze the IC-dependent mutual synchronization of perpendicularto-plane (PERP)-STNO pairs, and then we suggest that the initial conditions can be controlled to avoid such a phenomenon by using magnetic dipolar coupling.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源