Please use this identifier to cite or link to this item: https://doi.org/10.1063/1.4967334
Title: Spin-wave dispersion of nanostructured magnonic crystals with periodic defects
Authors: Zhang V.L.
Lim H.S. 
Ng S.C. 
Kuok M.H. 
Zhou X.
Adeyeye A.O. 
Keywords: Binary alloys
Brillouin scattering
Dispersion (waves)
Energy gap
Iron alloys
Spin waves
Bragg reflection
Brillouin light scattering
Localization properties
Magnetization profile
Magnonic crystals
One-dimensional arrays
Perfect crystals
Single frequency
Crystal defects
Issue Date: 2016
Citation: Zhang V.L., Lim H.S., Ng S.C., Kuok M.H., Zhou X., Adeyeye A.O. (2016). Spin-wave dispersion of nanostructured magnonic crystals with periodic defects. AIP Advances 6 (11) : 115106. ScholarBank@NUS Repository. https://doi.org/10.1063/1.4967334
Abstract: The spin-wave dispersions in nanostructured magnonic crystals with periodic defects have been mapped by Brillouin light scattering. The otherwise perfect crystals are one-dimensional arrays of alternating 460nm-wide Ni80Fe20 stripes and 40nm-wide air gaps, where one in ten Ni80Fe20 stripes is a defect of width other than 460 nm. Experimentally, the defects are manifested as additional Brillouin peaks, lying within the first and second bandgaps of the perfect crystal, whose frequencies decrease with increasing defect stripe width. Finite-element calculations, based on a supercell comprising one defect and nine perfect Py stripes, show that the defect modes are localized about the defects, with the localization exhibiting an approximate U-shaped dependence on defect size. Calculations also reveal extra magnon branches and the opening of mini-bandgaps, within the allowed bands of the perfect crystal, arising from Bragg reflections at the boundaries of the shorter supercell Brillouin zone. Simulated magnetization profiles of the band-edge modes of the major and mini-bandgaps reveal their different symmetries and localization properties. The findings could find application in microwave magnonic devices like single-frequency passband spin-wave filters. © 2016 Author(s).
Source Title: AIP Advances
URI: https://scholarbank.nus.edu.sg/handle/10635/174620
ISSN: 2158-3226
DOI: 10.1063/1.4967334
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