Rabi-like splitting and refractive index sensing with hybrid Tamm plasmon-cavity modes
S. Jena, R. B. Tokas, S. Thakur, and D. V. Udupa

TL;DR
This paper demonstrates Rabi-like splitting and self-referenced refractive index sensing in hybrid plasmonic-1D photonic crystal structures, showing how mode coupling, sensitivity, and sensing parameters can be tuned by structural variations.
Contribution
It introduces a novel hybrid mode system with tunable Rabi-like splitting for enhanced refractive index sensing in photonic structures.
Findings
Strong coupling causes Rabi-like splitting validated by anticrossing.
Sensitivity increases with cavity thickness and refractive index contrast.
Hybrid mode reflectivity varies significantly with analyte refractive index.
Abstract
Rabi-like splitting and self-referenced refractive index sensing in hybrid plasmonic-1D photonic crystal structures have been theoretically demonstrated. The coupling between Tamm plasmon and cavity photon modes are tuned by incorporating a low refractive index spacer layer adjacent to the metallic layer to form their hybrid modes. Anticrossing of the modes observed at different values of spacer layer thickness validates the strong coupling between the two modes and causes Rabi-like splitting with different splitting energy. Rabi-like splitting energy decreases with increasing number of periods (N) and refractive index contrast ({\eta}) of two dielectric materials used to make the 1D photonic crystals, and the observed variation is explained by an analytical model. Angular and polarization dependency of the hybrid modes shows that the polarization splitting of the lower hybrid mode is…
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Taxonomy
TopicsPhotonic Crystals and Applications · Plasmonic and Surface Plasmon Research · Metamaterials and Metasurfaces Applications
