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Collective spin waves in arrays of asymmetric and symmetric width nanowires: effect of the film layering sequence

Authors :
A. O. Adeyeye
Gianluca Gubbiotti
X. Zhou
Mikhail Kostylev
Gaspare Varvaro
Source :
Journal of physics. D, Applied physics, 53 (2020): 135001. doi:10.1088/1361-6463/ab605a, info:cnr-pdr/source/autori:Gubbiotti, G.; Zhou, X.; Adeyeye, A. O.; Varvaro, G.; Kostylev, M./titolo:Collective spin waves in arrays of asymmetric and symmetric width nanowires: effect of the film layering sequence/doi:10.1088%2F1361-6463%2Fab605a/rivista:Journal of physics. D, Applied physics (Print)/anno:2020/pagina_da:135001/pagina_a:/intervallo_pagine:135001/volume:53
Publication Year :
2020
Publisher :
IOP Publishing, 2020.

Abstract

We have studied, experimentally and theoretically, the effect of a layering sequence on the magnonic band structure in dense arrays of both asymmetric- and symmetric cross-section tri-layered Py/Cu/Fe and Fe/Cu/Py nanowires. The spin-wave dispersion for these artificial crystals has been measured with Brillouin light scattering (BLS) spectroscopy. We also carried out numerical simulations of the dispersion using an original model employing a 2D Green's function description of the dynamic dipole field of the precessing magnetization. The presence of the Cu spacer exchange-decouples the two magnetic layers, which stabilizes two equilibrium states of static magnetization. These are the parallel and antiparallel states, for which the static magnetization vectors for the layers are either co-aligned or anti-aligned to each other, respectively. These states are stable in a range of applied fields that depend on the layer width and their ordering in the stack. The magnetization configurations and layers sequence, as well as the presence of acoustic (in-phase) and optic (out-of-phase) spin-wave modes, have a significant impact on the magnonic band structure both in terms of the frequency positions of the dispersive and stationary modes and on their spatial profiles.

Details

ISSN :
13616463 and 00223727
Volume :
53
Database :
OpenAIRE
Journal :
Journal of Physics D: Applied Physics
Accession number :
edsair.doi.dedup.....05e1444e2737e2405e889df56ae7346b
Full Text :
https://doi.org/10.1088/1361-6463/ab605a