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自旋纹理中磁振子的相干谐波产生。

Coherent harmonic generation of magnons in spin textures.

作者信息

Lan Guibin, Liu Kang-Yuan, Wang Zhenyu, Xia Fan, Xu Hongjun, Guo Tengyu, Zhang Yu, He Bin, Li Jiahui, Wan Caihua, Bauer Gerrit E W, Yan Peng, Liu Gang-Qin, Pan Xin-Yu, Han Xiufeng, Yu Guoqiang

机构信息

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing, China.

School of Physical Science, University of Chinese Academy of Sciences, Beijing, China.

出版信息

Nat Commun. 2025 Jan 30;16(1):1178. doi: 10.1038/s41467-025-56558-7.

Abstract

Harmonic generation, a notable non-linear phenomenon, has promising applications in information processing. For spin-waves in ferromagnetic materials, great progress has been made in the generation higher harmonics, however probing the coherence of these higher harmonics is challenging. Here, using in-situ diamond sensors, we study the coherent harmonic generation of spin waves in a soft ferromagnet. High-order resonance lines are generated via a microwave input and detected by nitrogen-vacancy (NV) centers in nanodiamonds. The phase coherence of the harmonic spin waves is verified by the Rabi oscillations of the NV electron spins. Numerical simulations indicate that the harmonic generation by microwaves below the ferromagnetic resonance frequency is associated with the nonlinear mixing of spin waves by magnetization structures at the film edge. Our finding of geometry-induced magnon harmonic generation constitutes a new way to generate magnon combs with coherent high-order harmonics and may pave the way for magnon-based information processing and quantum sensing applications.

摘要

谐波产生是一种显著的非线性现象,在信息处理方面有着广阔的应用前景。对于铁磁材料中的自旋波,在产生更高谐波方面已经取得了很大进展,然而探测这些更高谐波的相干性具有挑战性。在这里,我们使用原位金刚石传感器,研究了软铁磁体中自旋波的相干谐波产生。通过微波输入产生高阶共振线,并由纳米金刚石中的氮空位(NV)中心进行检测。谐波自旋波的相位相干性通过NV电子自旋的拉比振荡得到验证。数值模拟表明,低于铁磁共振频率的微波产生的谐波与薄膜边缘磁化结构引起的自旋波非线性混合有关。我们关于几何诱导磁振子谐波产生的发现构成了一种产生具有相干高阶谐波的磁振子梳的新方法,并可能为基于磁振子的信息处理和量子传感应用铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/208e/11782610/090752376714/41467_2025_56558_Fig1_HTML.jpg

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