English

Two-dimensional dispersion of magnetostatic volume spin waves

Mesoscale and Nanoscale Physics 2021-12-01 v1

Abstract

The dipolar (magnetostatic) interaction dominates the behavior of spin waves in magnetic films in the long-wavelength regime. In an in-plane magnetized film, volume modes exist with a negative group velocity (backward volume magnetostatic spin waves), in addition to the forward surface-localized mode (Damon-Eshbach). Inside the film of finite thickness LL, the volume modes have a nontrivial spatial dependence, and their two-dimensional dispersion relations ω(k)\omega(\mathbf{k}) can be calculated only numerically. We present explicit perturbative expressions for the profiles and frequencies of the volume modes, taking into account an in-plane applied field and uniaxial anisotropy, for the regimes kL1\lVert \mathbf{k}L \rVert \gg 1 and kL1\lVert \mathbf{k}L \rVert \ll 1, which together provide a good indication of the behavior of the modes for arbitrary wavevector k\mathbf{k}. Moreover, we derive a very accurate semianalytical expression for the dispersion relation ω(k)\omega(\mathbf{k}) of the lowest-frequency mode that is straightforward to evaluate using standard numerical routines. Our results are useful to quickly interpret and control the excitation and propagation of spin waves in (opto-)magnetic experiments.

Keywords

Cite

@article{arxiv.1602.01362,
  title  = {Two-dimensional dispersion of magnetostatic volume spin waves},
  author = {F. J. Buijnsters and L. J. A. van Tilburg and A. Fasolino and M. I. Katsnelson},
  journal= {arXiv preprint arXiv:1602.01362},
  year   = {2021}
}

Comments

16 pages, 8 figures

R2 v1 2026-06-22T12:42:55.693Z