Spin-Wave Dispersion Measurement by Variable-Gap Propagating Spin-Wave Spectroscopy
Marek Vaňatka
1
,
Krzysztof Szulc
2
,
Ondřej Wojewoda
1
,
C. Dubs
3
,
A. V. Chumak
4
,
Maciej Krawczyk
2
,
O. V. Dobrovolskiy
4
,
Jarosław W. Kłos
2
,
Jacek Kłos
2
,
Michal Urbánek
1, 5
1
3
INNOVENT e.V. Technologieentwicklung, 07745 Jena, Germany
|
Publication type: Journal Article
Publication date: 2021-11-17
scimago Q1
wos Q2
SJR: 1.288
CiteScore: 7.2
Impact factor: 4.4
ISSN: 23317019
General Physics and Astronomy
Abstract
Knowledge of the spin-wave dispersion relation is a prerequisite for the explanation of many magnonic phenomena as well as for the practical design of magnonic devices. Spin-wave dispersion measurement by established optical techniques such as Brillouin light scattering or the magneto-optical Kerr effect at ultralow temperatures is often forbiddingly complicated. By contrast, microwave spectroscopy can be used at all temperatures but it usually lacks spatial and wave-number resolution. Here we develop a variable-gap-propagating-spin-wave-spectroscopy (VGPSWS) method for the deduction of the dispersion relation of spin waves in a wide frequency and wave-number range. The method is based on the phase-resolved analysis of the spin-wave transmission between two antennas with variable spacing, in conjunction with theoretical data treatment. We validate the method for in-plane magnetized $\mathrm{Co}$-$\mathrm{Fe}$-$\mathrm{B}$ and yttrium iron garnet thin films in $\mathbf{k}\ensuremath{\perp}\mathbf{B}$ and $\mathbf{k}\ensuremath{\parallel}\mathbf{B}$ geometries by deducing the full set of material and spin-wave parameters, including spin-wave dispersion, hybridization of the fundamental mode with the higher-order perpendicular standing spin-wave modes, and surface spin pinning. The compatibility of microwaves with low temperatures makes this approach attractive for cryogenic magnonics at the nanoscale.
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Metrics
27
Total citations:
27
Citations from 2024:
15
(55.55%)
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Vaňatka M. et al. Spin-Wave Dispersion Measurement by Variable-Gap Propagating Spin-Wave Spectroscopy // Physical Review Applied. 2021. Vol. 16. No. 5. 054033
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Vaňatka M., Szulc K., Wojewoda O., Dubs C., Chumak A. V., Krawczyk M., Dobrovolskiy O. V., Kłos J. W., Kłos J., Urbánek M. Spin-Wave Dispersion Measurement by Variable-Gap Propagating Spin-Wave Spectroscopy // Physical Review Applied. 2021. Vol. 16. No. 5. 054033
Cite this
RIS
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TY - JOUR
DO - 10.1103/PhysRevApplied.16.054033
UR - https://doi.org/10.1103/PhysRevApplied.16.054033
TI - Spin-Wave Dispersion Measurement by Variable-Gap Propagating Spin-Wave Spectroscopy
T2 - Physical Review Applied
AU - Vaňatka, Marek
AU - Szulc, Krzysztof
AU - Wojewoda, Ondřej
AU - Dubs, C.
AU - Chumak, A. V.
AU - Krawczyk, Maciej
AU - Dobrovolskiy, O. V.
AU - Kłos, Jarosław W.
AU - Kłos, Jacek
AU - Urbánek, Michal
PY - 2021
DA - 2021/11/17
PB - American Physical Society (APS)
IS - 5
VL - 16
SN - 2331-7019
ER -
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@article{2021_Vaňatka,
author = {Marek Vaňatka and Krzysztof Szulc and Ondřej Wojewoda and C. Dubs and A. V. Chumak and Maciej Krawczyk and O. V. Dobrovolskiy and Jarosław W. Kłos and Jacek Kłos and Michal Urbánek},
title = {Spin-Wave Dispersion Measurement by Variable-Gap Propagating Spin-Wave Spectroscopy},
journal = {Physical Review Applied},
year = {2021},
volume = {16},
publisher = {American Physical Society (APS)},
month = {nov},
url = {https://doi.org/10.1103/PhysRevApplied.16.054033},
number = {5},
pages = {054033},
doi = {10.1103/PhysRevApplied.16.054033}
}