Reconfigurable magnonic metamaterial for microwave signal processing

S. Louis, I. Lisenkov, S. Nikitov, V. Tyberkevych, A. Slavin
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Abstract

We propose a reconfigurable magnonic metamaterial based on an array of dipolarly-coupled magnetic nano-pillars having perpendicular shape anisotropy. The static magnetic ground state of such a metamaterial is antiferromagnetic (AFM), and a linear defect in the form of ferromagnetically (FM) ordered chain of nano-pillars can act as a waveguide supporting a strongly localized spin wave on the linear defect whose frequency is well-separated from the bulk spin wave spectrum of the metamaterial. The phase of this localized SW can be controlled by placing an additional point defect (a pillar with inverted magnetization direction) near the waveguide. In our case the phase shift is close to π radians, which corresponds to the operation of the phase inverter working without an external bias magnetic field. Since the phase shift is achieved by changing the orientation of magnetization of a single pillar, it is possible to dynamically control this phase shift. Also, by changing the orientation of the pillars placed further from the waveguide it is possible to vary the magnitude of the phase shift without significant changes in the spin wave amplitude.
用于微波信号处理的可重构磁子超材料
我们提出了一种基于具有垂直形状各向异性的偶极耦合磁性纳米柱阵列的可重构磁振子超材料。这种超材料的静态磁性基态为反铁磁(AFM),铁磁有序纳米柱链形式的线性缺陷可以作为波导,在线性缺陷上支持强局域自旋波,其频率与超材料的体自旋波谱分离良好。可以通过在波导附近放置额外的点缺陷(具有反向磁化方向的柱)来控制该局域化SW的相位。在我们的情况下,相移接近π弧度,这对应于相位逆变器在没有外部偏置磁场的情况下工作的操作。由于相移是通过改变单个柱的磁化方向来实现的,因此可以动态控制这种相移。此外,通过改变离波导更远的柱子的方向,可以改变相移的大小,而不会显著改变自旋波的幅度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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