Publication result detail

Mie-enhanced microfocused Brillouin light scattering for full wave vector resolution of nanoscale spin waves

KRČMA, J.; WOJEWODA, O.; HRTOŇ, M.; HOLOBRÁDEK, J.; ARREGI URIBEETXEBARRIA, J.; PANDA, J.; PRIBYTOVA, E.; URBÁNEK, M.

Original Title

Mie-enhanced microfocused Brillouin light scattering for full wave vector resolution of nanoscale spin waves

English Title

Mie-enhanced microfocused Brillouin light scattering for full wave vector resolution of nanoscale spin waves

Type

WoS Article

Original Abstract

Magnons, the quanta of spin waves, are magnetic excitations of matter spanning through the entire crystal's Brillouin zone and covering a wide range of frequencies ranging from subgigahertz to terahertz. Magnons play a crucial role in many phenomena, such as the reduction of saturation magnetization with increasing temperature or the Bose-Einstein condensation. However, established experimental techniques cannot resolve magnons with wave vectors between 30 and 300 rad mu m-1. We address this gap by tailoring the Brillouin light scattering process with dielectric periodic nanostripes hosting Mie resonances. This approach enables access to the previously unmeasurable wave vector range while providing at the same time full wave vector resolution, all within a tabletop setup. Filling this gap can stimulate further experimental investigations of the fundamental phenomena associated with magnons as well as applications in computational and microwave devices. In addition, the same methodology can be applied to other excitations of matter, such as phonons, opening up possibilities in, e.g., mechanobiological studies.

English abstract

Magnons, the quanta of spin waves, are magnetic excitations of matter spanning through the entire crystal's Brillouin zone and covering a wide range of frequencies ranging from subgigahertz to terahertz. Magnons play a crucial role in many phenomena, such as the reduction of saturation magnetization with increasing temperature or the Bose-Einstein condensation. However, established experimental techniques cannot resolve magnons with wave vectors between 30 and 300 rad mu m-1. We address this gap by tailoring the Brillouin light scattering process with dielectric periodic nanostripes hosting Mie resonances. This approach enables access to the previously unmeasurable wave vector range while providing at the same time full wave vector resolution, all within a tabletop setup. Filling this gap can stimulate further experimental investigations of the fundamental phenomena associated with magnons as well as applications in computational and microwave devices. In addition, the same methodology can be applied to other excitations of matter, such as phonons, opening up possibilities in, e.g., mechanobiological studies.

Keywords

Films

Key words in English

Films

Authors

KRČMA, J.; WOJEWODA, O.; HRTOŇ, M.; HOLOBRÁDEK, J.; ARREGI URIBEETXEBARRIA, J.; PANDA, J.; PRIBYTOVA, E.; URBÁNEK, M.

RIV year

2026

Released

31.10.2025

Publisher

American Association for the Advancement of Science

Periodical

Science Advances

Volume

11

Number

44

State

United States of America

Pages from

1

Pages to

9

Pages count

9

URL

Full text in the Digital Library

BibTex

@article{BUT200502,
  author="Jakub {Krčma} and Ondřej {Wojewoda} and Martin {Hrtoň} and Jakub {Holobrádek} and Jon Ander {Arregi Uribeetxebarria} and Jaganandha {Panda} and Ekaterina {Pribytova} and Michal {Urbánek}",
  title="Mie-enhanced microfocused Brillouin light scattering for full wave vector resolution of nanoscale spin waves",
  journal="Science Advances",
  year="2025",
  volume="11",
  number="44",
  pages="9",
  doi="10.1126/sciadv.ady8833",
  url="https://www.science.org/doi/10.1126/sciadv.ady8833"
}