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An Experiment‐Based Numerical Treatment of Spin Wave Modes in Periodically Porous Materials
Author(s) -
Van Opdenbosch Daniel,
Hukic-Markosian Golda,
Ott Steven,
Abert Claas,
Bartl Michael H.
Publication year - 2020
Publication title -
physica status solidi (b)
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.51
H-Index - 109
eISSN - 1521-3951
pISSN - 0370-1972
DOI - 10.1002/pssb.201900296
Subject(s) - perpendicular , materials science , brillouin zone , spin wave , condensed matter physics , porosity , standing wave , anisotropy , inverse , scattering , magnetic field , phase (matter) , porous medium , optics , physics , composite material , geometry , ferromagnetism , mathematics , quantum mechanics
To determine a general correlation between structure and dynamic magnetic properties of porous materials, the frequencies of magnetic spin waves are studied by Brillouin light scattering from nickel inverse opals and backed up by micromagnetic simulations. Within the observed unit cell size regime between 400 and 800 nm, discrete thickness standing modes are found to change with unit cell size. By applying pair correlation functions of the inverse opal solid phase normal to the applied field to an equation for perpendicular standing modes, the directional and unit cell size‐dependent spectral intensities above the surface mode region can be traced. Thus, an accessible general approach for the prediction of standing spin waves in porous materials is obtained.

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