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Hybrid magnonic-oscillator system

机译:混合磁振荡器系统

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We propose a hybrid magnonic-oscillator system based on the combination of a spin transfer auto-oscillator and a magnonic waveguide to open new perspectives for spin-wave based circuits. The system is composed of a spin transfer oscillator based on a vortex state which is dipolarly coupled to a nanoscale spin-wave waveguide with longitudinal magnetization. In its auto-oscillating regime, the oscillator emits coherent spin waves with tunable and controllable frequencies, directions, and amplitudes into the waveguide. We demonstrate the principle of this method using micromagnetic simulations and show that reconfiguration of the system is possible by changing the chirality and polarity of the magnetic vortex. Spin waves are emitted into the waveguide with high non-reciprocity and the preferred direction depends on the core polarity of the vortex. In contrast, different vortex chiralities lead to different amplitudes of the emitted waves. Our findings open up a novel way to design an agile spintronic device for the coherent and tunable generation of propagating spin waves. (c) 2022 Author(s).
机译:我们提出了一种基于自旋传输自振子和磁振波导组合的混合磁振子系统,为基于自旋波的电路开辟了新的前景。该系统由一个基于涡旋态的自旋传递振荡器组成,该自旋传递振荡器偶极耦合到具有纵向磁化的纳米级自旋波波导上。在其自动振荡状态下,振荡器向波导发射具有可调和可控频率、方向和振幅的相干自旋波。我们通过微磁模拟证明了这种方法的原理,并表明通过改变磁涡流的手性和极性可以重新配置系统。自旋波以高非互易性发射到波导中,首选方向取决于涡旋的核心极性。相反,不同的涡旋手性导致发射波的振幅不同。我们的研究结果开辟了一种设计敏捷自旋电子器件的新方法,用于相干和可调谐的传播自旋波的产生。(c) 2022 年作者。

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