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Magnonic Quadrupole Topological Insulator in Antiskyrmion Crystals
Tomoki Hirosawa1, Sebastián A Díaz2, Jelena Klinovaja2
1Department of Physics, University of Tokyo, Bunkyo, Tokyo 113-0033, Japan.
Abstract:
We uncover that antiskyrmion crystals provide an experimentally accessible platform to realize a magnonic quadrupole topological insulator, whose hallmark signatures are robust magnonic corner states. Furthermore, we show that tuning an applied magnetic field can trigger the self-assembly of antiskyrmions carrying a fractional topological charge along the sample edges. Crucially, these fractional antiskyrmions restore the symmetries needed to enforce the emergence of the magnonic corner states. Using the machinery of nested Wilson loops, adapted to magnonic systems supported by noncollinear magnetic textures, we demonstrate the quantization of the bulk quadrupole moment, edge dipole moments, and corner charges.
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