Twist-Tuned Magnonic Nanocavity Mode in a Trilayer Moiré Superlattice

Fuente: arXiv
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Autori principali: Yang, Tianyu, Gubbiotti, Gianluca, Madami, Marco, Yu, Haiming, Chen, Jilei
Natura: Preprint
Pubblicazione: 2026
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author Yang, Tianyu
Gubbiotti, Gianluca
Madami, Marco
Yu, Haiming
Chen, Jilei
author_facet Yang, Tianyu
Gubbiotti, Gianluca
Madami, Marco
Yu, Haiming
Chen, Jilei
contents The concept of moiré superlattices has recently been introduced into the field of magnonics, enabling unprecedented control over spin-wave propagation and confinement in nanoscale magnonic devices. In this work, we report a numerical investigation on the nanocavity in a trilayer magnetic moiré superlattice structure consisting of antidot lattices. By tuning the middle layer twist angle, high tunability of the magnonic band structure can be achieved with characteristic flat bands and the corresponding nanocavity mode formation in outer layers. At an optimal twist angle of 3 deg, excitation at the flat band frequency yields nanocavity mode with linewidth of 175 nm. In contrast to its bilayer counterpart, the trilayer magnonic moiré superlattice exhibits antiphase nanocavity modes in the outer layers while showing no nanocavity formation in the middle layer. Our study indicates that the switching and distribution of the nanocavity modes can be governed by tuning the middle layer twist angle with a strong magnon intensity confinement. The trilayer magnonic moiré structure holds a distinct advantage in tunability, which opens up new avenues for the design of future moiré magnonic devices.
format Preprint
id arxiv_https___arxiv_org_abs_2603_19729
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Twist-Tuned Magnonic Nanocavity Mode in a Trilayer Moiré Superlattice
Yang, Tianyu
Gubbiotti, Gianluca
Madami, Marco
Yu, Haiming
Chen, Jilei
Mesoscale and Nanoscale Physics
The concept of moiré superlattices has recently been introduced into the field of magnonics, enabling unprecedented control over spin-wave propagation and confinement in nanoscale magnonic devices. In this work, we report a numerical investigation on the nanocavity in a trilayer magnetic moiré superlattice structure consisting of antidot lattices. By tuning the middle layer twist angle, high tunability of the magnonic band structure can be achieved with characteristic flat bands and the corresponding nanocavity mode formation in outer layers. At an optimal twist angle of 3 deg, excitation at the flat band frequency yields nanocavity mode with linewidth of 175 nm. In contrast to its bilayer counterpart, the trilayer magnonic moiré superlattice exhibits antiphase nanocavity modes in the outer layers while showing no nanocavity formation in the middle layer. Our study indicates that the switching and distribution of the nanocavity modes can be governed by tuning the middle layer twist angle with a strong magnon intensity confinement. The trilayer magnonic moiré structure holds a distinct advantage in tunability, which opens up new avenues for the design of future moiré magnonic devices.
title Twist-Tuned Magnonic Nanocavity Mode in a Trilayer Moiré Superlattice
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2603.19729