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Toward nonlinear magnonics: Intensity-dependent spin-wave switching in insulating side-coupled magnetic stripes

机译:走向非线性强磁学:绝缘侧耦合磁条中与强度有关的自旋波切换

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摘要

We demonstrate that the nonlinear spin-wave transport in two laterally parallel magnetic stripes exhibit the intensity-dependent power exchange between the adjacent spin-wave channels. By the means of Brillouin light scattering technique, we investigate collective nonlinear spin-wave dynamics in the presence of magnetodipolar coupling. The nonlinear intensity-dependent effect reveals itself in the spin-wave mode transformation and differential nonlinear spin-wave phase shift in each adjacent magnetic stripe. The proposed analytical theory, based on the coupled Ginzburg-Landau equations, predicts the geometry design involving the reduction of power requirement to the all-magnonic switching. A very good agreement between calculation and experiment was found. In addition, a micromagnetic and finite-element approach has been independently used to study the nonlinear behavior of spin waves in adjacent stripes and the nonlinear transformation of spatial profiles of spin-wave modes. Our results show that the proposed spin-wave coupling mechanism provides the basis for nonlinear magnonic circuits and opens the perspectives for all-magnonic computing architecture.
机译:我们证明了在两个横向平行磁条中的非线性自旋波传输展现出相邻自旋波通道之间强度相关的功率交换。通过布里渊光散射技术,我们研究了存在磁偶极耦合的集体非线性自旋波动力学。非线性强度依赖性效应在每个相邻磁条中的自旋波模式转换和微分非线性自旋波相移中显现出来。所提出的分析理论基于耦合的Ginzburg-Landau方程,预测了几何设计,其中涉及降低了对全磁控开关的功率需求。在计算和实验之间找到了很好的一致性。此外,微磁和有限元方法已被独立地用于研究相邻条纹中自旋波的非线性行为以及自旋波模式的空间轮廓的非线性变换。我们的研究结果表明,所提出的自旋波耦合机制为非线性大电子电路提供了基础,并为全电磁计算架构开辟了前景。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2017年第14期|144428.1-144428.10|共10页
  • 作者单位

    Laboratory "Metamaterials", Saratov State University, Saratov 410012, Russia ,Kotel'nikov Institute of Radioengineering and Electronics, Russian Academy of Sciences, Moscow 125009, Russia;

    Laboratory "Metamaterials", Saratov State University, Saratov 410012, Russia;

    Laboratory "Metamaterials", Saratov State University, Saratov 410012, Russia;

    Laboratory "Metamaterials", Saratov State University, Saratov 410012, Russia;

    Laboratory "Metamaterials", Saratov State University, Saratov 410012, Russia;

    Laboratory "Metamaterials", Saratov State University, Saratov 410012, Russia,Kotel'nikov Institute of Radioengineering and Electronics, Russian Academy of Sciences, Moscow 125009, Russia;

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