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基于偶极场局域自旋波模式的自旋轨道矩纳米振荡器

Spin-Orbit Torque Nano-oscillators by Dipole-Field-Localized Spin Wave Modes.

作者信息

Zhang Chi, Lee Inhee, Pu Yong, Manuilov Sergei A, Pelekhov Denis V, Hammel P Chris

机构信息

Department of Physics, The Ohio State University, Columbus, Ohio 43210, United States.

出版信息

Nano Lett. 2021 Dec 22;21(24):10208-10214. doi: 10.1021/acs.nanolett.1c03075. Epub 2021 Dec 6.

Abstract

We demonstrate a high-quality spin-orbit torque nano-oscillator comprised of spin wave modes confined by the magnetic field by the strongly inhomogeneous dipole field of a nearby micromagnet. This approach enables variable spatial confinement and systematic tuning of magnon spectrum and spectral separations for studying the impact of multimode interactions on auto-oscillations. We find these dipole-field-localized spin wave modes exhibit good characteristic properties as auto-oscillators─narrow line width and large amplitude─while persisting up to room temperature. We find that the line width of the lowest-lying localized mode is approximately proportional to temperature in good agreement with theoretical analysis of the impact of thermal fluctuations. This demonstration of a clean oscillator with tunable properties provides a powerful tool for understanding the fundamental limitations and line width contributions to improve future spin-Hall oscillators.

摘要

我们展示了一种高质量的自旋轨道矩纳米振荡器,它由自旋波模式组成,这些模式被附近微磁体的强非均匀偶极场产生的磁场所限制。这种方法能够实现可变的空间限制以及对磁振子谱和谱间距的系统调谐,以研究多模相互作用对自激振荡的影响。我们发现,这些偶极场局域化的自旋波模式作为自激振荡器表现出良好的特性——窄线宽和大振幅——并且在室温下仍能保持。我们发现,最低能态局域模式的线宽大约与温度成正比,这与热涨落影响的理论分析结果吻合良好。这种具有可调谐特性的纯净振荡器的展示为理解基本限制和线宽贡献提供了一个强大工具,有助于改进未来的自旋霍尔振荡器。

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