Optica Open
Browse
arXiv.svg (5.58 kB)

Observing high-k magnons with Mie-resonance-enhanced Brillouin light scattering

Download (5.58 kB)
Version 2 2023-06-08, 12:56
Version 1 2023-01-10, 02:37
preprint
posted on 2023-06-08, 12:56 authored by Ondřej Wojewoda, Filip Ligmajer, Martin Hrtoň, Jan Klíma, Meena Dhankhar, Kristýna Davídková, Michal Staňo, Jakub Holobrádek, Jakub Zlámal, Tomáš Šikola, Michal Urbánek
Magnonics is a prospective beyond CMOS technology which uses magnons, the quanta of spin waves, for low-power information processing. Many magnonic concepts and devices were recently demonstrated at macro- and microscale, and now these concepts need to be realized at nanoscale. Brillouin light scattering spectroscopy and microscopy (BLS) has become a standard technique for spin wave visualization and characterization, and enabled many pioneering magnonic experiments. However, due to its fundamental limit in maximum detectable magnon momentum, the conventional BLS cannot be used to detect nanoscale spin waves. Here we show that optically induced Mie resonances in dielectric nanoparticles can be used to extend the range of accessible spin wave wavevectors beyond the BLS fundamental limit. The method is universal and can be used in many magnonic experiments dealing with thermally excited as well as coherently excited high-momentum, short-wavelength spin waves. This discovery significantly extends the usability and relevance of the BLS technique for nanoscale magnonic research.

History

Disclaimer

This arXiv metadata record was not reviewed or approved by, nor does it necessarily express or reflect the policies or opinions of, arXiv.

Usage metrics

    Categories

    Licence

    Exports

    RefWorks
    BibTeX
    Ref. manager
    Endnote
    DataCite
    NLM
    DC