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Low-lying magnon frequency comb in skyrmion crystals

作者:Xuejuan Liu, Zhejunyu Jin, Zhengyi Li, Zhaozhuo Zeng, Minghao Li, Yuping Yao, Yunshan Cao, Yinghui Zhang, Peng Yan · 发表于:Physical review. B./Physical review. B · 年份:2024 · DOI:10.1103/physrevb.110.184413 · 被引用次数:8 · 研究领域:Acoustic Wave Resonator Technologies、Mechanical and Optical Resonators、Advanced Fiber Laser Technologies

A stable, low-power, and tunable magnon frequency comb (MFC) is crucial for magnon-based precision measurements, quantum information processing, and chip integration. The original method for creating a MFC utilizes the nonlinear interactions between propagating spin waves and localized oscillations of an isolated magnetic texture, e.g., skyrmion. It requires a driving frequency well above the ferromagnetic resonance (FMR) and the spectrum frequency of a MFC will quickly approach the detection limit of a conventional microwave technique after only tens of comb teeth. In addition, the detection and manipulation of a single skyrmion is challenging in experiments due to its high degree of locality. These issues hinder the applications of a MFC. In this work, we report the low-lying MFC with comb frequencies below the FMR in a skyrmion crystal (SkX). We show that the MFC originates from the three-wave mixing between the collective skyrmion gyration and breathing in the SkX. Our findings significantly improve the efficiency of the nonlinear frequency conversion from a single-frequency microwave input and establish a synergistic relationship between the SkX and MFC, which paves the way to coherent information processing and ultrasensitive metrology based on the MFC.