Anisotropic magnetization relaxation in ferromagnetic multilayers with variable interlayer exchange coupling
A. F. Kravets, D. M. Polishchuk, Yu. I. Dzhezherya, A. I., Tovstolytkin, V. O. Golub, and V. Korenivski

TL;DR
This study investigates how variable interlayer exchange coupling affects anisotropic magnetization relaxation in ferromagnetic multilayers, revealing the role of spacer thickness in energy exchange and linewidth narrowing, with a developed theory for data interpretation.
Contribution
It introduces a comprehensive model to analyze the influence of interlayer exchange coupling on magnetization relaxation in multilayers with variable spacer thickness.
Findings
Stronger coupling enhances microwave energy exchange between layers.
Weaker mirror effects can lead to anti-damping and narrower linewidths.
Quantified key parameters like coupling constant and anisotropy dispersion.
Abstract
The FMR linewidth and its anisotropy in F/f/F/AF multilayers, where spacer f has a low Curie point compared to the strongly ferromagnetic F and F, is investigated. The role of the interlayer exchange coupling in magnetization relaxation is determined experimentally by varying the thickness of the spacer. It is shown that stronger interlayer coupling via thinner spacers enhances the microwave energy exchange between the outer ferromagnetic layers, with the magnetization of F exchange-dragged by the resonance precession in F. A weaker mirror effect is also observed: the magnetization of F can be exchange-dragged by the precession in F, which leads to anti-damping and narrower FMR linewidths. A theory is developed to model the measured data, which allows separating various contributions to the magnetic relaxation in the system. Key physical parameters, such…
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