Abstract
Magnonics attracts increasing attention in the view of low-energy computation technologies based on spin waves. Recently, spin-wave propagation in longitudinally magnetized nano-scaled spin-wave conduits was demonstrated, proving the fundamental feasibility of magnonics at the sub-100 nm scale. Transversely magnetized nano-conduits, which are of great interest in this regard as they offer a large group velocity and a potentially chirality-based protected transport of energy, have not yet been investigated due to their complex internal magnetic field distribution. Here, we present a study of propagating spin waves in a transversely magnetized nanoscopic yttrium iron garnet conduit of 50 nm width. Space and time-resolved microfocused Brillouin-light-scattering spectroscopy is employed to measure the spin-wave group velocity and decay length. A long-range spin-wave propagation is observed with a decay length of up to (8.0 ± 1.5) μm and a large spin-wave lifetime of up to (44.7 ± 9.1) ns. The results are supported with micromagnetic simulations, revealing a broad single-mode frequency range and the absence of a mode localized to the edges. Furthermore, a frequency nonreciprocity for counter-propagating spin waves is observed in the simulations and the experiment, caused by the trapezoidal cross section of the structure. The revealed long-distance spin-wave propagation on the nano-scale is particularly interesting for an application in spin-wave devices, allowing for long-distance transport of information in magnonic circuits and low-energy device architectures.
| Original language | English |
|---|---|
| Article number | 132406 |
| Number of pages | 6 |
| Journal | Applied Physics Letters |
| Volume | 118 |
| Issue number | 13 |
| DOIs | |
| Publication status | Published - Mar 2021 |
Austrian Fields of Science 2012
- 103017 Magnetism
Keywords
- cond-mat.mes-hall
- physics.app-ph
- FILMS
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Dive into the research topics of 'Long-range spin-wave propagation in transversely magnetized nano-scaled conduits'. Together they form a unique fingerprint.Projects
- 2 Finished
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Functional layers of nm-thick YIG films and microstructures
Chumak, A. (Project Lead), Levchenko, K. (Project Staff) & Knauer, S. (Affiliated Project Staff)
1/10/19 → 30/09/22
Project: Research funding
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MagnonCircuits: Nano-Scale Magnonic Circuits for Novel Computing Systems
Chumak, A. (Project Lead), Wang, Q. (Project Staff), Knauer, S. (Scientific Project Staff) & Dobrovolskiy, O. (Scientific Project Staff)
1/06/16 → 30/11/21
Project: Research funding
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