Phonon-polaritonic skyrmions: Transition from bubble- to N\'eel-type
Florian Mangold, Enrico Ba\`u, Lin Nan, Julian Schwab, Thorsten G\"olz, Andrea Mancini, Bettina Frank, Andreas Tittl, Harald Giessen

TL;DR
This paper demonstrates tunable surface phonon-polariton skyrmion lattices in silicon carbide, showing a switch from bubble- to Ne9el-type skyrmions by adjusting the excitation wavelength, enabling new topological light control in nanophotonics.
Contribution
It introduces a method to achieve topological tuning of phonon-polariton skyrmions in dielectric materials, overcoming losses in plasmonic systems and enabling dynamic control of skyrmion types.
Findings
Switching skyrmion type by 10% wavelength change
Imaging of skyrmion lattices via near-field microscopy
Confirmation of topological transition through domain analysis
Abstract
Optical skyrmions are members of the emerging topological branch of solid-state physics and photonics, allowing for control over topological light textures through light-matter interactions. However, in nanophotonics their practical application has been severely limited by high inherent losses in plasmonic materials, resulting in the lack of tunability between different topological properties. Here, we utilize the strong dispersion of silicon carbide thin films to realize highly confined surface phonon-polariton skyrmion lattices, which we image via near-field microscopy. We experimentally demonstrate topological tuning between bubble- and N\'eel-type skyrmions, a unique advantage that polar dielectrics offer over most existing approaches. Changing the excitation wavelength by only 10% switches the skyrmion type, revealed by examination of the skyrmion number density contrast. Analysis…
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Taxonomy
TopicsPlasmonic and Surface Plasmon Research · Topological Materials and Phenomena · Thermal Radiation and Cooling Technologies
