利用传播自旋波光谱学测量单向自旋波

IF 3.8 2区 物理与天体物理 Q2 PHYSICS, APPLIED
G.Y. Thiancourt, S.M. Ngom, N. Bardou, T. Devolder
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引用次数: 0

摘要

自旋波的色散关系可围绕布里渊区中心单调变化,允许零动量波包单向流动,这在应用中很有意义。在这种情况下,传播自旋波光谱学等技术无法发挥作用,因为很难在光谱中识别特定频率的自旋波波向。在这里,我们提出了一种分析这种情况的方法,并将其应用于处于剪刀态的合成反铁磁体中的声学自旋波,在这种情况下,我们证实平行于外加磁场的传播是单向的。有趣的是,我们发现在这种单向情况下,在两个天线之间传播的自旋波累积的相位与天线间距并不成正比。它还是问题中另外两个长度的函数:天线宽度和自旋波衰减长度。要避免频散关系中的波矢误差,就必须考虑到这两个因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Unidirectional spin waves measured using propagating-spin-wave spectroscopy

Unidirectional spin waves measured using propagating-spin-wave spectroscopy
The dispersion relation of spin waves can vary monotonically about the center of the Brillouin zone, allowing zero-momentum wavepackets to flow unidirectionally, which is of interest for applications. Techniques such as propagating-spin-wave spectroscopy are inoperative in such cases because of the difficulty to identify the spin-wave wavevector at a particular frequency within a spectrum. Here we present a method to analyze this case and apply it to acoustic spin waves in a synthetic antiferromagnet in the scissors state, in which we confirm that propagation parallel to the applied fields is unidirectional. Interestingly, we find that in this unidirectional situation, the phase accumulated by the spin waves propagating between two antennas is not proportional to the antenna spacing. It is also a function of the two other lengths of the problem: the antenna width and the spin-wave decay length. Accounting for them is required to avoid wavevector errors in the dispersion relations.
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来源期刊
Physical Review Applied
Physical Review Applied PHYSICS, APPLIED-
CiteScore
7.80
自引率
8.70%
发文量
760
审稿时长
2.5 months
期刊介绍: Physical Review Applied (PRApplied) publishes high-quality papers that bridge the gap between engineering and physics, and between current and future technologies. PRApplied welcomes papers from both the engineering and physics communities, in academia and industry. PRApplied focuses on topics including: Biophysics, bioelectronics, and biomedical engineering, Device physics, Electronics, Technology to harvest, store, and transmit energy, focusing on renewable energy technologies, Geophysics and space science, Industrial physics, Magnetism and spintronics, Metamaterials, Microfluidics, Nonlinear dynamics and pattern formation in natural or manufactured systems, Nanoscience and nanotechnology, Optics, optoelectronics, photonics, and photonic devices, Quantum information processing, both algorithms and hardware, Soft matter physics, including granular and complex fluids and active matter.
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