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中国物理学会期刊

基于磁振子-磁振子耦合效应的带阻滤波器

Magnonic band-stop filters based on magnon-magnon coupling effect

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  • 基于磁振子的电子学器件可以通过自旋角动量的转移来传输信息与能量, 而不依赖于电荷的移动, 因此能够为低功耗器件的研发提供材料和物理基础. 本综述总结了近期本团队围绕垂直磁化的多层膜体系中的磁振子–磁振子耦合效应、自旋波色散关系及其器件应用开展的研究. 首先针对具有垂直磁各向异性的耦合多层膜体系, 基于朗道–利夫希茨方程建立了磁化动力学模型, 证实对称性破缺是磁振子耦合的核心机制. 其次在两种垂直磁化体系的实验中观测到T态时磁振子–磁振子耦合效应以及频率带隙, 研究了自旋波的非互易性. 最后在理论和实验研究的基础上进一步开发了器件应用, 利用磁场方向调控磁振子耦合的开启与关闭, 成功证明了可开关的磁振子带阻滤波器的可行性, 实现稳定且可重复的滤波功能. 本文总结了从物理机制、材料体系到器件设计的研究路径, 为低功耗磁振子信息处理与微波功能器件提供了理论基础与技术方案.

     

    Magnon-based electronic devices can transmit information and energy via the transfer of spin angular momentum without relying on the movement of charge, thereby providing material and physical foundations for the research and development of low-power devices. This paper summarizes the research on magnon-magnon coupling effect, spin wave dispersion relation and the corresponding device applications in perpendicularly magnetized multilayer systems. First, a magnetization dynamics model is established based on the Landau-Lifshitz equation for coupled multilayer systems with perpendicular magnetic anisotropy. It is verified that symmetry breaking serves as the core mechanism of magnon-magnon coupling. Then, the magnon-magnon coupling effect and frequency gap under the T-type magnetic configuration are observed in two perpendicularly magnetized systems, and the nonreciprocity of spin waves is investigated. Finally, on the basis of theoretical and experimental research, device applications are further developed. By regulating the ON and OFF states of magnon-magnon coupling via magnetic field orientation, a switchable magnonic band-stop filter device is successfully fabricated, which demonstrates excellent operational repeatability and stable performance. This work summarizes the investigation path from physical mechanism, material system to device design, providing theoretical foundations and technical schemes for low-power magnon information processing and microwave functional devices.

     

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