Skip to main content

Research Repository

Advanced Search

Effect of width and thickness on propagating spin waves in permalloy microstripe waveguides

Devapriya, M. S.; Aditya, Nair S.; Kuchibhotla, Mahathi; Adeyeye, Adekunle Olusola; Haldar, Arabinda

Effect of width and thickness on propagating spin waves in permalloy microstripe waveguides Thumbnail


Authors

M. S. Devapriya

Nair S. Aditya

Mahathi Kuchibhotla

Arabinda Haldar



Abstract

We report the effect of thickness and width on the spin wave transport and dispersion characteristics of permalloy (Py) microstripes using analytical calculations and experiments. Py waveguides with widths ranging from 2 to 4 μm were fabricated for two different thicknesses: 5 and 20 nm. Our results show a notable increase in the group velocity of spin waves with greater thickness, showing a fourfold rise as the thickness increases. Additionally, the accessible frequency range expands from 0.6 to 2.5 GHz as the thickness increases. We find that the spin wave mode frequency is affected by both thickness and width, with a frequency shift of approximately 0.2 GHz observed when the width increases from 2 to 4 μm. Moreover, spin waves decay more rapidly in thinner films, with the decay length of 20 nm-thick waveguides being four times longer than that of 5 nm-thick waveguides. Thicker and wider waveguides provide a longer decay length, facilitating the transmission of information over longer distances without significant energy loss. Our study offers an understanding of the spin wave propagation in microstrip waveguides and its potential in the development of future magnonic devices.

Citation

Devapriya, M. S., Aditya, N. S., Kuchibhotla, M., Adeyeye, A. O., & Haldar, A. (2024). Effect of width and thickness on propagating spin waves in permalloy microstripe waveguides. Journal of Applied Physics, 136(9), Article 093905. https://doi.org/10.1063/5.0223672

Journal Article Type Article
Acceptance Date Aug 20, 2024
Online Publication Date Sep 5, 2024
Publication Date Sep 7, 2024
Deposit Date Oct 31, 2024
Publicly Available Date Oct 31, 2024
Journal Journal of Applied Physics
Print ISSN 0021-8979
Electronic ISSN 1089-7550
Publisher American Institute of Physics
Peer Reviewed Peer Reviewed
Volume 136
Issue 9
Article Number 093905
DOI https://doi.org/10.1063/5.0223672
Public URL https://durham-repository.worktribe.com/output/2995113

Files





You might also like



Downloadable Citations