Twisted Magnon Frequency Comb and Penrose Superradiance
arXiv:2204.01582 · doi:10.1103/PhysRevLett.129.107203
Abstract
Quantization effects of the nonlinear magnon-vortex interaction in ferromagnetic nanodisks are studied. We show that the circular geometry twists the spin-wave fields with spiral phase dislocations carrying quantized orbital angular momentum (OAM). Meanwhile, the confluence and splitting scattering of twisted magnons off the gyrating vortex core (VC) generates a frequency comb consisting of discrete and equally spaced spectral lines, dubbed as twisted magnon frequency comb (tMFC). It is found that the mode spacing of the tMFC is equal to the gyration frequency of the VC and the OAM quantum numbers between adjacent spectral lines differ by one. By applying a magnetic field perpendicular to the plane of a thick nanodisk, we observe a magnonic Penrose superradiance inside the cone vortex state, which mimics the amplification of waves scattered from a rotating black hole. It is demonstrated that the higher-order modes of tMFC are significantly amplified while the lower-order ones are trapped within the VC gyrating orbit which manifests as the ergoregion. These results suggest a promising way to generate twisted magnons with large OAM and to drastically improve the flatness of the magnon comb.
6 pages, 4 figures
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- Field Theory of Linear Spin-Waves in Finite Textured Ferromagnets
- Stimulated Magnonic Frequency Combs
- Nonlinear spin-Wave Doppler effect for flexible tuning of magnonic frequencies
- Time-resolved observation of magnon splitting into vortex gyration and Floquet spin waves
- Giant mode splitting of azimuthal spin waves in radial vortices