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Interactions between a magnon mode and a cavity photon mode mediated by traveling photons

机译:MAGNON模式与由行驶光子介导的腔光子模式之间的相互作用

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We systematically study the indirect interaction between a magnon mode and a cavity photon mode mediated by traveling photons of a waveguide. From a general Hamiltonian, we derive the effective coupling strength between two separated modes, and obtain the theoretical expression of the system's transmission. Accordingly, we design an experimental setup consisting of a shield cavity photon mode, a microstrip line, and a magnon system to test our theoretical predictions. From measured transmission spectra, indirect interaction, as well as mode hybridization, between two modes can be observed. All experimental observations support our theoretical predictions. In this work we clarify the mechanism of traveling photon mediated interactions between two separate modes. Even without spatial mode overlap, two separated modes can still couple with each other through their correlated dissipations into a mutual traveling photon bus. This conclusion may help us understand the recently discovered dissipative coupling effect in cavity magnonics systems. Additionally, the physics and technique developed in this work may benefit us in designing new hybrid systems based on the waveguide magnonics.
机译:我们系统地研究了通过波导的波导介导的胶质模式和腔光子模式之间的间接相互作用。从一般的Hamiltonian从一般的Hamiltonian中获得了两种分离模式之间的有效耦合强度,并获得了系统传输的理论表达。因此,我们设计了由屏蔽腔光子模式,微带线和Magnon系统组成的实验设置,以测试我们的理论预测。从测量的透射光谱,可以观察到间接相互作用以及两种模式之间的间接相互作用以及模式杂交。所有实验观察都支持我们的理论预测。在这项工作中,我们阐明了在两个单独模式之间行进光子介导的相互作用的机制。即使没有空间模式重叠,也可以通过它们的相关耗散彼此彼此相互加入两个分离的模式,进入相互旅行的光子总线。这一结论可以帮助我们了解腔麦克白系统中最近发现的耗散耦合效果。此外,在这项工作中开发的物理和技术可以使我们在设计基于波导氧化物的新混合系统方面有益。

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