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Details

Autor(en) / Beteiligte
Titel
Theory of propagating spin wave spectroscopy using inductive antennas: conditions for unidirectional energy flow
Ist Teil von
  • Physical review applied, 2023-10
Ort / Verlag
American Physical Society
Erscheinungsjahr
2023
Link zum Volltext
Quelle
American Physical Society Journals
Beschreibungen/Notizen
  • Many recent papers report on the interest of spin waves for applications. This paper revisits the propagating spin wave spectroscopy when using inductive transceivers connected to a vector network analyzer. The spin wave conduit can be made of a non-reciprocal material. The formalism offers a simple and direct method to understand, design and optimize devices harnessing propagating spin waves, including when a unidirectional energy flow is desired. The concept of the mismatch of helicity between the spin wave and the magnetic field radiated by antennas is first clarified. Owing to the form of the susceptibility tensor reflecting the precession ellipticity, there exists specific orientations of the wavevector for which a perfect helicity mismatch is reached. The spin waves with this orientation and this direction of wavevector are "dark" in the sense that they do not couple with the inductive antenna. This leads to single-sided wavevector generation, that should not to be confused with a unidirectional emission of energy. A method to calculate the antenna-to-antenna transmission parameter is then provided. Analytical approximations are then applied on situations that illustrate the respective role of the direction of the spin wave wavevector versus that of the group velocity. The often-encountered cases of spin waves possessing either a V-shaped or a flat dispersion relation are revisited. These reciprocal dispersion relations lead to amplitude non-reciprocity because of the helicity mismatch phenomenon. Conversely, for spin waves with a line-shaped dispersion relation, an unforeseen quasi-unidirectional emission of spin waves occurs, which is of interest for applications. This situation can be obtained when using the acoustical spin waves of synthetic antiferromagnets when the wavevector is close to parallel to the applied field. We finally show that this configuration can be harnessed to design reconfigurable frequency filters.
Sprache
Englisch
Identifikatoren
ISSN: 2331-7019
eISSN: 2331-7019
DOI: 10.48550/arXiv.2306.09716
Titel-ID: cdi_hal_primary_oai_HAL_hal_04257905v1
Format
Schlagworte
Physics

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