Broadband Magnomechanics Enabled by Magnon-Spoof Plasmon Hybridization

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Hauptverfasser: Jiang, Yu, Xu, Jing, Yan, Zixin, Pishehvar, Amin, Zhang, Xufeng
Format: Preprint
Veröffentlicht: 2024
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author Jiang, Yu
Xu, Jing
Yan, Zixin
Pishehvar, Amin
Zhang, Xufeng
author_facet Jiang, Yu
Xu, Jing
Yan, Zixin
Pishehvar, Amin
Zhang, Xufeng
contents Cavity magnomechanics is one important hybrid magnonic platform that focuses on the coherent interaction between magnons and phonons. The resulting magnon polarons inherit the intrinsic properties of both magnons and phonons, combining their individual advantages and enabling new physics and functionalities. But in previous demonstrations the magnon-phonon coupling either have limited bandwidth or cannot be efficiently accessed. In this work, we show that by utilizing the slow-wave hybrid magnonics configuration based on spoof surface plasmon polaritons (SSPPs), the coherent magnon-phonon interaction can be efficiently observed over a frequency range larger than 7 GHz on a YIG thin film device. In particular, the capability of the SSPPs in exciting short-wavelength magnons reveals a novel size effect when the magnons are coupled with high-over tone bulk acoustic resonances. Our work paves the way towards novel magnomechanical devices.
format Preprint
id arxiv_https___arxiv_org_abs_2412_16312
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Broadband Magnomechanics Enabled by Magnon-Spoof Plasmon Hybridization
Jiang, Yu
Xu, Jing
Yan, Zixin
Pishehvar, Amin
Zhang, Xufeng
Mesoscale and Nanoscale Physics
Cavity magnomechanics is one important hybrid magnonic platform that focuses on the coherent interaction between magnons and phonons. The resulting magnon polarons inherit the intrinsic properties of both magnons and phonons, combining their individual advantages and enabling new physics and functionalities. But in previous demonstrations the magnon-phonon coupling either have limited bandwidth or cannot be efficiently accessed. In this work, we show that by utilizing the slow-wave hybrid magnonics configuration based on spoof surface plasmon polaritons (SSPPs), the coherent magnon-phonon interaction can be efficiently observed over a frequency range larger than 7 GHz on a YIG thin film device. In particular, the capability of the SSPPs in exciting short-wavelength magnons reveals a novel size effect when the magnons are coupled with high-over tone bulk acoustic resonances. Our work paves the way towards novel magnomechanical devices.
title Broadband Magnomechanics Enabled by Magnon-Spoof Plasmon Hybridization
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2412.16312