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Designing magnetic droplet soliton nucleation employing spin polarizer

机译:设计磁性液滴孤子成核采用旋转偏振器

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We show by means of micromagnetic simulations that spin polarizer in nano-contact (NC) spin torque oscillators as the representative of the fixed layer in an orthogonal pseudo-spin valve can be employed to design and to control magnetic droplet soliton nucleation and dynamics. We found that using a tilted spin polarizer layer decreases the droplet nucleation time which is more suitable for high speed applications. However, a tilted spin polarizer increases the nucleation current and decreases the frequency stability of the droplet. Additionally, by driving the magnetization inhomogenously at the NC region, it is found that a tilted spin polarizer reduces the precession angle of the droplet and through an interplay with the Oersted field of the DC current, it breaks the spatial symmetry of the droplet profile. Our findings explore fundamental insight into nano-scale magnetic droplet soliton dynamics with potential tenability parameters for future microwave electronics.
机译:我们通过微磁模拟来展示纳米接触(NC)自旋扭矩振荡器中的旋转偏振器作为正交伪旋转阀中的固定层的代表可以用于设计和控制磁性液滴孤子成核和动力学。 我们发现,使用倾斜的旋转偏振器层会降低更适合于高速应用的液滴成核时间。 然而,倾斜的旋转偏振器增加了成核电流并降低了液滴的频率稳定性。 另外,通过在NC区域的偏离偏离磁化,发现倾斜的旋转偏振器降低了液滴的预测角度并通过与DC电流的奥斯特的场的相互作用,它破坏了液滴轮廓的空间对称性。 我们的研究结果探讨了纳米级磁液滴孤子动态的基本洞察力,具有未来微波电子的潜在折损性参数。

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