Tunable magnon emission from a nano-optomagnet

Fuente: arXiv
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Autores principales: Duvakina, Anna, Karakhanyan, Vage, Xu, Mingran, Suarez, Miguel-Angel, Deenen, Axel J. M., Raschetti, Marina, Mucchietto, Andrea, Grosjean, Thierry, Grundler, Dirk
Formato: Preprint
Publicado: 2025
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author Duvakina, Anna
Karakhanyan, Vage
Xu, Mingran
Suarez, Miguel-Angel
Deenen, Axel J. M.
Raschetti, Marina
Mucchietto, Andrea
Grosjean, Thierry
Grundler, Dirk
author_facet Duvakina, Anna
Karakhanyan, Vage
Xu, Mingran
Suarez, Miguel-Angel
Deenen, Axel J. M.
Raschetti, Marina
Mucchietto, Andrea
Grosjean, Thierry
Grundler, Dirk
contents The growing demand for dense, energy-efficient, and high-frequency signal processing continues to drive device miniaturization. While downscaling remains a central challenge, magnons offer a promising solution as nanoscale signal carriers, supporting broadband operation from GHz to THz without moving charge carriers and generating Joule heating. However, their integration at the nanoscale is limited by conventional electrical excitation based on coplanar waveguides, which require metal pads few to hundreds of micrometres in size. Here, we demonstrate tunable magnon emission into a yttrium iron garnet film by focusing microwave-modulated laser light onto an integrated Au nanodisc. Using inelastic light scattering spectroscopy, we observe magnons whose frequencies match the optical modulation frequencies in the GHz frequency regime. The largest magnon amplitudes are found for circularly polarized laser light and specific nanodisc diameters consistent with a plasmon-enhanced inverse Faraday effect. These results establish plasmonic nanoantennas as reconfigurable nanoscale magnon sources, enabling broadband signal generation governed entirely by optical modulation.
format Preprint
id arxiv_https___arxiv_org_abs_2507_10742
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Tunable magnon emission from a nano-optomagnet
Duvakina, Anna
Karakhanyan, Vage
Xu, Mingran
Suarez, Miguel-Angel
Deenen, Axel J. M.
Raschetti, Marina
Mucchietto, Andrea
Grosjean, Thierry
Grundler, Dirk
Optics
Applied Physics
The growing demand for dense, energy-efficient, and high-frequency signal processing continues to drive device miniaturization. While downscaling remains a central challenge, magnons offer a promising solution as nanoscale signal carriers, supporting broadband operation from GHz to THz without moving charge carriers and generating Joule heating. However, their integration at the nanoscale is limited by conventional electrical excitation based on coplanar waveguides, which require metal pads few to hundreds of micrometres in size. Here, we demonstrate tunable magnon emission into a yttrium iron garnet film by focusing microwave-modulated laser light onto an integrated Au nanodisc. Using inelastic light scattering spectroscopy, we observe magnons whose frequencies match the optical modulation frequencies in the GHz frequency regime. The largest magnon amplitudes are found for circularly polarized laser light and specific nanodisc diameters consistent with a plasmon-enhanced inverse Faraday effect. These results establish plasmonic nanoantennas as reconfigurable nanoscale magnon sources, enabling broadband signal generation governed entirely by optical modulation.
title Tunable magnon emission from a nano-optomagnet
topic Optics
Applied Physics
url https://arxiv.org/abs/2507.10742