The study of moiré superlattices has revealed intriguing phenomena in electronic systems, including unconventional superconductivity and ferromagnetism observed in magic-angle bilayer graphene. This approach has recently been adapted to the field of magnonics. In this Letter, we investigate the confinement of spin waves in a nanomagnonic waveguide integrated on top of a magnetic moire superlattice. Our numerical analysis reveals a magnonic flatband at the center of the Brillouin zone, created by a 3.5 twist in the moire superlattice. The flatband, characterized by a high magnon density of states and a zero group velocity, allows for the confinement of magnons within the AB stacking region. The flatband results from the mode anticrossing of several different magnon bands, covering a wavevector range of nearly 40 rad/lm and a 166nm wide spatial distribution of the magnon trapping in the waveguide. Our results pave the way for nanomagnonic devices and circuits based on spin-wave trapping in magnon waveguides.
Magnon confinement in a nanomagnonic waveguide by a magnetic Moiré superlattice
Gianluca GubbiottiWriting – Review & Editing
;
2024
Abstract
The study of moiré superlattices has revealed intriguing phenomena in electronic systems, including unconventional superconductivity and ferromagnetism observed in magic-angle bilayer graphene. This approach has recently been adapted to the field of magnonics. In this Letter, we investigate the confinement of spin waves in a nanomagnonic waveguide integrated on top of a magnetic moire superlattice. Our numerical analysis reveals a magnonic flatband at the center of the Brillouin zone, created by a 3.5 twist in the moire superlattice. The flatband, characterized by a high magnon density of states and a zero group velocity, allows for the confinement of magnons within the AB stacking region. The flatband results from the mode anticrossing of several different magnon bands, covering a wavevector range of nearly 40 rad/lm and a 166nm wide spatial distribution of the magnon trapping in the waveguide. Our results pave the way for nanomagnonic devices and circuits based on spin-wave trapping in magnon waveguides.File | Dimensione | Formato | |
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Magnon confinement in a nanomagnonic waveguide by a magnetic Moiré superlattice_accepted.pdf
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Descrizione: This article may be downloaded for personal use only. Any other use requires prior permission of the author and AIP Publishing. This article appeared in Jilei Chen, Marco Madami, Gianluca Gubbiotti, Haiming Yu; Magnon confinement in a nanomagnonic waveguide by a magnetic Moiré superlattice. Appl. Phys. Lett. 14 October 2024; 125 (16): 162403 and may be found at https://doi.org/10.1063/5.0230523.
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