Phase Detection of Propagating Magnetostatic Spin Waves: From Damon-Eschbach to Backward Volume Modes
ORAL
Abstract
We report experiments which characterize spin wave propagation in a thin (3.05 micron) (111) YIG film for arbitrary angles between the in-plane magnetic field and the mode wavevectors. By measuring the magnetic field evolution of the phase of the wave traveling across the film we deduce the frequency dependence of the wavevector, the dispersion relation, from which the mode velocity follows. Additionally, we observe multiple nodes in the regime of the propagating Damon-Eschbach mode; these arise from avoided crossings associated quantization of the higher backward volume modes along the film normal together with the exchange energy. This, in turn, allows a determination of the exchange energy.
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Authors
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Jonathan Trossman
Department of Physics and Astronomy, Northwestern University
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Jinho Lim
Department of Physics and Astronomy, Northwestern University
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Wonbae Bang
$ ^{1}$Department of Physics and Astronomy, Northwestern University, Evanston, IL 60208, Department of Physics and Astronomy, Northwestern University
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John Ketterson
Department of Physics and Astronomy, Department of Electrical and Computer Engineering, Northwestern University
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C. C. Tsai
Department of Engineering and Management of Advanced Technology, Chang Jung Christian University