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Stability of Spin–Torque Oscillators With Dual Free Layers

机译:双自由层旋转扭矩振荡器的稳定性

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A system of differential equations describing the stability of a spin-torque oscillator (STO) with two free layers is introduced. The system is derived from the Landau-Lifshitz-Gilbert (LLG) equation for two freely rotating magnetic moments interacting via spin-torque. In the case of two free magnetic layers, the magnetization of each layer can precess at its own frequency, which is directly proportional to the local effective field in the layer. The spin-torque depends on the relative angle between two layers. Therefore, if the magnetization in two magnetic layers rotates with different frequencies, the spin-torque will vary in time. This can lead to instabilities of the precession angle in both the layers. When two layers oscillate at equal frequencies, instabilities due to spin-torque variations are eliminated. The requirement for the synchronization leads to a system of three differential equations for three unknowns. The stable oscillation orbits for each layer are obtained by finding fixed point solutions of the system. The results were confirmed using finite-element method (FEM) micromagnetic simulations.
机译:介绍了描述具有两个自由层的旋转扭矩振荡器(STO)的稳定性的微分方程系统。该系统来自Landau-Lifshitz-Gilbert(LLG)方程,用于通过旋转扭矩相互作用的两个自由旋转的磁性矩。在两个自由磁层的情况下,每个层的磁化可以在其自身的频率下进行生物,其与层中的局部有效场成比例。旋转扭矩取决于两层之间的相对角度。因此,如果两个磁层中的磁化以不同的频率旋转,则旋转扭矩将随时间变化。这可能导致两层中的预测角度的稳定性。当两层以等于频率振荡时,消除了由于旋转扭矩变化引起的不稳定性。同步的要求导致三个未知数三个微分方程的系统。通过找到系统的固定点解决方案来获得每层的稳定振荡轨道。使用有限元方法(FEM)微磁模拟确认结果。

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