4.7 Article

Dynamic coupling and spin-wave dispersions in a magnetic hybrid system made of an artificial spin-ice structure and an extended NiFe underlayer

Journal

APL MATERIALS
Volume 10, Issue 9, Pages -

Publisher

AIP Publishing
DOI: 10.1063/5.0102571

Keywords

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Funding

  1. U.S. Department of Energy, Office of Basic Energy Sciences, Division of Materials Sciences and Engineering [2020LWPKH7]
  2. Italian Ministry of University and Research [101007417]
  3. European Union's Horizon 2020 Research and Innovation Program
  4. [DE-SC0020308]

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This study presents a combined experimental and numerical investigation of the spin-wave dispersion in a NiFe artificial spin-ice (ASI) system. The spin-wave dispersion exhibits a rich variety of modes with either stationary or propagating characteristics. The lowest frequency mode displays a bandwidth of approximately 0.5 GHz, which is independent of the presence of the underlying film. However, the intensity of certain modes in Brillouin light scattering strongly depends on the presence of the extended thin-film underlayer. Micromagnetic simulations reveal the dynamic coupling between the ASI lattice and film underlayer, and demonstrate the modulation of propagating spin waves at the nanometer length scale.
We present a combined experimental and numerical study of the spin-wave dispersion in a NiFe artificial spin-ice (ASI) system consisting of an array of stadium-shaped nanoislands deposited on the top of a continuous NiFe film with non-magnetic spacer layers of varying thickness. The spin-wave dispersion, measured by wavevector resolved Brillouin light scattering spectroscopy in the Damon-Eshbach configuration, consists of a rich number of modes, with either stationary or propagating character. We find that the lowest frequency mode displays a bandwidth of & SIM;0.5 GHz, which is independent of the presence of the film underneath. On the contrary, the Brillouin light scattering intensity of some of the detected modes strongly depends on the presence of the extended thin-film underlayer. Micromagnetic simulations unveil the details of the dynamic coupling between the ASI lattice and film underlayer. Interestingly, the ASI lattice facilitates dynamics of the film either specific wavelengths or intensity modulation peculiar to the modes of the ASI elements imprinted in the film. Our results demonstrate that propagating spin waves can be modulated at the nanometer length scale by harnessing the dynamic mode coupling in the vertical, i.e., the out-of-plane direction of suitably designed magnonic structures. (C) 2022 Author(s).

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