Abstract
Modern-day CMOS-based computation technology is reaching its fundamental limitations. The emerging field of magnonics, which utilizes spin waves for data transport and processing, proposes a promising path to overcome these limitations. Different devices have been demonstrated recently on the macro- and microscale, but the feasibility of the magnonics approach essentially relies on the scalability of the structure feature size down to the extent of a few 10 nm, which are typical sizes for the established CMOS technology. Here, we present a study of propagating spin-wave packets in individual yttrium iron garnet (YIG) conduits with lateral dimensions down to 50 nm. Space and time-resolved microfocused Brillouin-light-scattering (BLS) spectroscopy is used to characterize the YIG nanostructures and measure the spin-wave decay length and group velocity directly. The revealed magnon transport at the scale comparable to the scale of CMOS proves the general feasibility of magnon-based data processing.
| Originalsprache | Englisch |
|---|---|
| Seiten (von - bis) | 4220-4227 |
| Seitenumfang | 8 |
| Fachzeitschrift | Nano Letters |
| Jahrgang | 20 |
| Ausgabenummer | 6 |
| DOIs | |
| Publikationsstatus | Veröffentlicht - 10 Juni 2020 |
ÖFOS 2012
- 103017 Magnetismus
- 103009 Festkörperphysik
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- 2 Abgeschlossen
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Nanometer-dicke YIG-Funktionsschichten und Mikrostrukturen
Chumak, A. (Projektleiter*in), Levchenko, K. (Projektmitarbeiter*in) & Knauer, S. (Assoziiertes Projektmitglied)
1/10/19 → 30/09/22
Projekt: Forschungsförderung
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MagnonCircuits: Nano-Scale Magnonic Circuits for Novel Computing Systems
Chumak, A. (Projektleiter*in), Wang, Q. (Projektmitarbeiter*in), Knauer, S. (Wissenschaftliche*r Projektmitarbeiter*in) & Dobrovolskiy, O. (Wissenschaftliche*r Projektmitarbeiter*in)
1/06/16 → 30/11/21
Projekt: Forschungsförderung
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