Rigorous numerical study of strong microwave photon-magnon coupling in all-dielectric magnetic multilayers
Ivan S. Maksymov, Jessica Hutomo, Donghee Nam, Mikhail Kostylev

TL;DR
This paper theoretically demonstrates strong microwave photon-magnon coupling in multilayered YIG structures, revealing anti-crossing phenomena and potential applications in tunable metamaterials and quantum information systems.
Contribution
It introduces a rigorous numerical approach to analyze photon-magnon interactions in multilayered dielectric structures, highlighting the tunability and potential applications.
Findings
Strong photon-magnon coupling with anti-crossing observed
Coupling is tunable via external magnetic field
Potential for applications in metamaterials and quantum info
Abstract
We demonstrate theoretically a strong local enhancement of the intensity of the in-plane microwave magnetic field in multilayered structures made from a magneto-insulating yttrium iron garnet (YIG) layer sandwiched between two non-magnetic layers with a high dielectric constant matching that of YIG. The enhancement is predicted for the excitation regime when the microwave magnetic field is induced inside the multilayer by the transducer of a stripline Broadband Ferromagnetic Resonance (BFMR) setup. By means of a rigorous numerical solution of the Landau-Lifshitz-Gilbert equation consistently with the Maxwell's equations, we investigate the magnetisation dynamics in the multilayer. We reveal a strong photon-magnon coupling, which manifests itself as anti-crossing of the ferromagnetic resonance (FMR) magnon mode supported by the YIG layer and the electromagnetic resonance mode supported…
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