Publikation:

Auto-oscillations and directional magnon emission induced by spin current injection into large magnetic volumes

Lade...
Vorschaubild

Dateien

Schlitz_2-18u5w3dgftkjk8.pdf
Schlitz_2-18u5w3dgftkjk8.pdfGröße: 1.39 MBDownloads: 6

Datum

2025

Autor:innen

Demidov, Vladislav E.
Demokritov, Sergej O.
Gambardella, Pietro

Herausgeber:innen

Kontakt

ISSN der Zeitschrift

Electronic ISSN

ISBN

Bibliografische Daten

Verlag

Schriftenreihe

Auflagebezeichnung

ArXiv-ID

Internationale Patentnummer

Link zur Lizenz

Angaben zur Forschungsförderung

Deutsche Forschungsgemeinschaft (DFG): 425217212
Deutsche Forschungsgemeinschaft (DFG): 529812702
Swiss National Science Foundation: 200020 200465

Projekt

Open Access-Veröffentlichung
Open Access Gold
Core Facility der Universität Konstanz

Gesperrt bis

Titel in einer weiteren Sprache

Publikationstyp
Zeitschriftenartikel
Publikationsstatus
Published

Erschienen in

Nature Communications. Springer. 2025, 16, 8472. eISSN 2041-1723. Verfügbar unter: doi: 10.1038/s41467-025-63350-0

Zusammenfassung

The ability to manipulate magnons using electronic currents holds transformative potential for high-frequency signal processing architectures based on insulating magnetic materials. A critical challenge, however, lies in achieving efficient magnon emission and amplification through damping compensation, which typically requires ultra-thin films. In this study, we break this limitation by demonstrating a three-order-of-magnitude increase in magnon population, consistent with the onset of auto-oscillations upon reaching damping compensation, by injecting a spin current from a μm-wide Pt wire into a continuous 150 nm-thick yttrium iron garnet film. Using nonlocal magnon transport and Brillouin light scattering, we reveal that damping compensation occurs due to magnon self-localization beneath the Pt injector, which precludes radiation from the excited region. As a result, the nonlocal magnon conductance becomes mode-dependent and is significantly amplified by multi-magnon scattering at high magnon populations. Finally, we demonstrate that interfacial spin injection breaks yttrium iron garnet’s inversion symmetry, leading to unidirectional magnon emission. Our results pave the way for the development of advanced magnonic devices, including directional magnon emitters, and offer a new approach to achieving damping compensation in thick magnetic films.

Zusammenfassung in einer weiteren Sprache

Fachgebiet (DDC)
530 Physik

Schlagwörter

Konferenz

Rezension
undefined / . - undefined, undefined

Forschungsvorhaben

Organisationseinheiten

Zeitschriftenheft

Zugehörige Datensätze in KOPS

Zitieren

ISO 690SCHLITZ, Richard, Vladislav E. DEMIDOV, Michaela LAMMEL, Sergej O. DEMOKRITOV, Pietro GAMBARDELLA, 2025. Auto-oscillations and directional magnon emission induced by spin current injection into large magnetic volumes. In: Nature Communications. Springer. 2025, 16, 8472. eISSN 2041-1723. Verfügbar unter: doi: 10.1038/s41467-025-63350-0
BibTex
@article{Schlitz2025-09-26Autoo-74994,
  title={Auto-oscillations and directional magnon emission induced by spin current injection into large magnetic volumes},
  year={2025},
  doi={10.1038/s41467-025-63350-0},
  volume={16},
  journal={Nature Communications},
  author={Schlitz, Richard and Demidov, Vladislav E. and Lammel, Michaela and Demokritov, Sergej O. and Gambardella, Pietro},
  note={Article Number: 8472}
}
RDF
<rdf:RDF
    xmlns:dcterms="http://purl.org/dc/terms/"
    xmlns:dc="http://purl.org/dc/elements/1.1/"
    xmlns:rdf="http://www.w3.org/1999/02/22-rdf-syntax-ns#"
    xmlns:bibo="http://purl.org/ontology/bibo/"
    xmlns:dspace="http://digital-repositories.org/ontologies/dspace/0.1.0#"
    xmlns:foaf="http://xmlns.com/foaf/0.1/"
    xmlns:void="http://rdfs.org/ns/void#"
    xmlns:xsd="http://www.w3.org/2001/XMLSchema#" > 
  <rdf:Description rdf:about="https://kops.uni-konstanz.de/server/rdf/resource/123456789/74994">
    <bibo:uri rdf:resource="https://kops.uni-konstanz.de/handle/123456789/74994"/>
    <dcterms:available rdf:datatype="http://www.w3.org/2001/XMLSchema#dateTime">2025-10-28T12:19:24Z</dcterms:available>
    <dc:creator>Demidov, Vladislav E.</dc:creator>
    <dcterms:issued>2025-09-26</dcterms:issued>
    <dc:creator>Lammel, Michaela</dc:creator>
    <void:sparqlEndpoint rdf:resource="http://localhost/fuseki/dspace/sparql"/>
    <dcterms:rights rdf:resource="http://creativecommons.org/licenses/by-nc-nd/4.0/"/>
    <dcterms:hasPart rdf:resource="https://kops.uni-konstanz.de/bitstream/123456789/74994/1/Schlitz_2-18u5w3dgftkjk8.pdf"/>
    <dcterms:title>Auto-oscillations and directional magnon emission induced by spin current injection into large magnetic volumes</dcterms:title>
    <dc:language>eng</dc:language>
    <dc:contributor>Gambardella, Pietro</dc:contributor>
    <dspace:isPartOfCollection rdf:resource="https://kops.uni-konstanz.de/server/rdf/resource/123456789/41"/>
    <dcterms:isPartOf rdf:resource="https://kops.uni-konstanz.de/server/rdf/resource/123456789/41"/>
    <dc:contributor>Lammel, Michaela</dc:contributor>
    <dcterms:abstract>The ability to manipulate magnons using electronic currents holds transformative potential for high-frequency signal processing architectures based on insulating magnetic materials. A critical challenge, however, lies in achieving efficient magnon emission and amplification through damping compensation, which typically requires ultra-thin films. In this study, we break this limitation by demonstrating a three-order-of-magnitude increase in magnon population, consistent with the onset of auto-oscillations upon reaching damping compensation, by injecting a spin current from a μm-wide Pt wire into a continuous 150 nm-thick yttrium iron garnet film. Using nonlocal magnon transport and Brillouin light scattering, we reveal that damping compensation occurs due to magnon self-localization beneath the Pt injector, which precludes radiation from the excited region. As a result, the nonlocal magnon conductance becomes mode-dependent and is significantly amplified by multi-magnon scattering at high magnon populations. Finally, we demonstrate that interfacial spin injection breaks yttrium iron garnet’s inversion symmetry, leading to unidirectional magnon emission. Our results pave the way for the development of advanced magnonic devices, including directional magnon emitters, and offer a new approach to achieving damping compensation in thick magnetic films.</dcterms:abstract>
    <dc:creator>Schlitz, Richard</dc:creator>
    <dc:rights>Attribution-NonCommercial-NoDerivatives 4.0 International</dc:rights>
    <foaf:homepage rdf:resource="http://localhost:8080/"/>
    <dc:contributor>Demokritov, Sergej O.</dc:contributor>
    <dc:creator>Gambardella, Pietro</dc:creator>
    <dc:creator>Demokritov, Sergej O.</dc:creator>
    <dspace:hasBitstream rdf:resource="https://kops.uni-konstanz.de/bitstream/123456789/74994/1/Schlitz_2-18u5w3dgftkjk8.pdf"/>
    <dc:contributor>Demidov, Vladislav E.</dc:contributor>
    <dc:contributor>Schlitz, Richard</dc:contributor>
    <dc:date rdf:datatype="http://www.w3.org/2001/XMLSchema#dateTime">2025-10-28T12:19:24Z</dc:date>
  </rdf:Description>
</rdf:RDF>

Interner Vermerk

xmlui.Submission.submit.DescribeStep.inputForms.label.kops_note_fromSubmitter

Kontakt
URL der Originalveröffentl.

Prüfdatum der URL

Prüfungsdatum der Dissertation

Finanzierungsart

Kommentar zur Publikation

Allianzlizenz
Corresponding Authors der Uni Konstanz vorhanden
Internationale Co-Autor:innen
Universitätsbibliographie
Ja
Begutachtet
Ja
Diese Publikation teilen