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Nanoscale topological magnonic crystals - TopMag

Nanoscale topological magnonic crystals - TopMag

Khrystyna Levchenko (ORCID: 0000-0002-0903-5942)
  • Grant DOI 10.55776/ESP526
  • Funding program ESPRIT
  • Status ongoing
  • Start November 1, 2023
  • End October 31, 2026
  • Funding amount € 316,037
  • Project website

Disciplines

Mathematics (30%); Nanotechnology (30%); Physics, Astronomy (40%)

Keywords

    Magnonics, Magnonic crystals, Nanoscale, Topological magnonic transport

Abstract

Faster, smaller, more efficient this motto for technological progress led to the computerisation and automatisation of everyday life. However, modern CMOS electronics and communication technology face fundamental drawbacks ranging from relatively low operational frequencies and associated limited speed of data processing to high power consumption. How do we tackle these? One prominent way is magnonics an advanced field that studies information transport and processing by spin waves in addition to or even instead of electric currents. Spin wave is a collective propagation of the magnetic moments of atoms in a solid body, akin to a water wave across the surface of a pond. Their fundamental units (or quanta) are called magnons, giving its name to the field. The use of spin waves allows for higher than conventional operational frequencies, low energy losses, no heat dissipation and low power consumption. Magnonics already successfully developed prototype circuitry elements, many of them designed in the form of sub-millimetre magnonic crystals (MCs) artificial magnetic materials. Yet, in order to surpass modern technology, magnonics units size should be at least in the sub-micrometre range. Most importantly, this device should work reliably on such a small scale, as even few imperfections could negatively impact performance. To address these challenges, we propose to combine magnonics and topology a branch of mathematics, that studies materials properties which are invariant under continuous transformations. Such a union would allow to analytically predict and realise a structure with a range of unique properties, such as efficient and low-loss propagation, or robustness to defects. Therefore, a strategic goal of the TopMag project is to explore topological magnon transport via experimentally realised topological magnonic crystals (TMC) at the nanoscale. This is a highly innovative approach, as a majority of the available research in topological magnonics is theoretical, with only a handful of niche experimental realisations due to the fields young age. Considering the emergence of works on the topological transport in accessible magnonics materials, progress in the growth of the high-quality nanoscale films of these materials and, their respective nanofabrication, it is time to fill the experimental gap. Based on our preliminary studies and the theoretical base, we expect the bi-component magnonic crystals made from the nanometre-thick Gallium-substituted Yttrium Iron Garnet (Ga:YIG) films with out-of-plane anisotropy to be among the best candidates to realise robust topological spin wave transport. To test our hypothesis, we will use a variety of modern nanofabrication instruments to create the magnonic crystals. Afterward we will use a wide range of experimental techniques to characterise and investigate magnon transport, complemented by micromagnetic simulations to provide valuable insights and support for our findings.

Research institution(s)
  • Universität Wien - 100%
Project participants
  • Andrii Chumak, Universität Wien , mentor
International project participants
  • Michal Urbanek, Brno University of Technology - Czechia
  • Carsten Dubs, INNOVENT e.V. Technologieentwicklung - Germany
  • Maciej Krawczyk, Adam Mickiewicz University - Poland

Research Output

  • 43 Citations
  • 6 Publications
Publications
  • 2024
    Title Nonlinear erasing of propagating spin-wave pulses in thin-film Ga:YIG
    DOI 10.1063/5.0189648
    Type Journal Article
    Author Breitbach D
    Journal Applied Physics Letters
    Pages 092405
    Link Publication
  • 2024
    Title Magnetic anisotropy and GGG substrate stray field in YIG films down to millikelvin temperatures
    DOI 10.1038/s44306-024-00030-7
    Type Journal Article
    Author Serha R
    Journal npj Spintronics
    Pages 29
    Link Publication
  • 2025
    Title Nanoscale spin-wave frequency-selective limiter for 5G technology
    DOI 10.1103/physrevapplied.23.034026
    Type Journal Article
    Author Davídková K
    Journal Physical Review Applied
    Pages 034026
    Link Publication
  • 2025
    Title 1D YIG hole-based magnonic nanocrystal
    DOI 10.1063/5.0285098
    Type Journal Article
    Author Levchenko K
    Journal Applied Physics Letters
    Pages 172401
  • 2025
    Title Spin-wave microscale RF delay lines for mid- and high-frequency 5G band
    DOI 10.1063/5.0286108
    Type Journal Article
    Author Davídková K
    Journal Journal of Applied Physics
    Pages 143908
    Link Publication
  • 2025
    Title Plasmon-enhanced Brillouin light scattering spectroscopy for magnetic systems. II. Numerical simulations
    DOI 10.1103/physrevb.111.014405
    Type Journal Article
    Author Demydenko Y
    Journal Physical Review B
    Pages 014405
    Link Publication

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