Direct observation of propagating spin waves in the 2D van der Waals ferromagnet Fe5GeTe2

  • Magnetism in reduced dimensionalities is of great fundamental interest while also providing perspectives for applications of materials with novel functionalities. In particular, spin dynamics in two dimensions (2D) have become a focus of recent research. Here, we report the observation of coherent propagating spin-wave dynamics in a ∼30 nm thick flake of 2D van der Waals ferromagnet Fe5GeTe2 using X-ray microscopy. Both phase and amplitude information were obtained by direct imaging below TC for frequencies from 2.77 to 3.84 GHz, and the corresponding spin-wave wavelengths were measured to be between 1.5 and 0.5 μm. Thus, parts of the magnonic dispersion relation were determined despite a relatively high magnetic damping of the material. Numerically solving an analytic multilayer model allowed us to corroborate the experimental dispersion relation and predict the influence of changes in the saturation magnetization or interlayer coupling, which could be exploited in future applicationsMagnetism in reduced dimensionalities is of great fundamental interest while also providing perspectives for applications of materials with novel functionalities. In particular, spin dynamics in two dimensions (2D) have become a focus of recent research. Here, we report the observation of coherent propagating spin-wave dynamics in a ∼30 nm thick flake of 2D van der Waals ferromagnet Fe5GeTe2 using X-ray microscopy. Both phase and amplitude information were obtained by direct imaging below TC for frequencies from 2.77 to 3.84 GHz, and the corresponding spin-wave wavelengths were measured to be between 1.5 and 0.5 μm. Thus, parts of the magnonic dispersion relation were determined despite a relatively high magnetic damping of the material. Numerically solving an analytic multilayer model allowed us to corroborate the experimental dispersion relation and predict the influence of changes in the saturation magnetization or interlayer coupling, which could be exploited in future applications by temperature control or stacking of 2D-heterostructures.show moreshow less

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Metadaten
Author:Frank Schulz, Kai Litzius, Lukas Powalla, Max T. Birch, Rodolfo A. Gallardo, Sayooj Satheesh, Markus Weigand, Tanja Scholz, Bettina V. Lotsch, Gisela Schütz, Marko Burghard, Sebastian Wintz
URN:urn:nbn:de:bvb:384-opus4-1102446
Frontdoor URLhttps://opus.bibliothek.uni-augsburg.de/opus4/110244
ISSN:1530-6984OPAC
ISSN:1530-6992OPAC
Parent Title (English):Nano Letters
Publisher:American Chemical Society (ACS)
Type:Article
Language:English
Date of first Publication:2023/11/13
Publishing Institution:Universität Augsburg
Release Date:2023/12/18
Tag:Mechanical Engineering; Condensed Matter Physics; General Materials Science; General Chemistry; Bioengineering
Volume:23
Issue:22
First Page:10126
Last Page:10131
DOI:https://doi.org/10.1021/acs.nanolett.3c02212
Institutes:Mathematisch-Naturwissenschaftlich-Technische Fakultät
Mathematisch-Naturwissenschaftlich-Technische Fakultät / Institut für Physik
Mathematisch-Naturwissenschaftlich-Technische Fakultät / Institut für Physik / Lehrstuhl für Experimentalphysik V
Dewey Decimal Classification:5 Naturwissenschaften und Mathematik / 53 Physik / 530 Physik
Licence (German):CC-BY 4.0: Creative Commons: Namensnennung (mit Print on Demand)