Interplay between Nonlinear Spectral Shift and Nonlinear Damping of Spin Waves in Ultrathin Yttrium Iron Garnet Waveguides

Lake S.R.; Divinskiy B.; Schmidt G.; Demokritov S.O.; Demidov V.E.

Research article (journal) | Peer reviewed

Abstract

We use phase-resolved imaging to directly study the nonlinear modification of the wavelength of spin waves propagating in 100-nm-thick in-plane magnetized yttrium iron garnet waveguides. We show that, by using moderate microwave power, one can realize spin waves with large amplitudes corresponding to precession angles in excess of 10° and nonlinear wavelength variation of up to 18% in this system. We also find that, at large precession angles, the propagation of spin waves is strongly affected by the onset of nonlinear damping, which results in a strong spatial dependence of the wavelength. This effect leads to spatially dependent controllability of the wavelength by the microwave power. Furthermore, it leads to the saturation of nonlinear spectral shift effects several micrometers away from the excitation point. These findings are important for the development of nonlinear integrated spin-wave signal-processing devices and can be used to optimize their characteristics.

Details about the publication

JournalPhysical Review Applied (Phys. Rev. Appl.)
Volume17
Issue3
StatusPublished
Release year2022
Language in which the publication is writtenEnglish
DOI10.1103/PhysRevApplied.17.034010
Link to the full texthttps://api.elsevier.com/content/abstract/scopus_id/85126684226
KeywordsNonlinear Spectral Shift; Nonlinear Damping; Spin Waves in Ultrathin Yttrium; Iron Garnet Waveguides

Authors from the University of Münster

Demidov, Vladislav
Professur für Angewandte Physik (Prof. Demokritov)
Demokritov, Sergej
Professur für Angewandte Physik (Prof. Demokritov)
Divinskiy, Boris
Professur für Angewandte Physik (Prof. Demokritov)