1. Boosting Optical Nanocavity Coupling by Retardation Matching to Dark Modes
- Author
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Rohit Chikkaraddy, Junyang Huang, Dean Kos, Eoin Elliott, Marlous Kamp, Chenyang Guo, Jeremy J. Baumberg, Bart de Nijs, Chikkaraddy, Rohit [0000-0002-3840-4188], Kamp, Marlous [0000-0003-4915-1312], Baumberg, Jeremy J [0000-0002-9606-9488], de Nijs, Bart [0000-0002-8234-723X], and Apollo - University of Cambridge Repository
- Subjects
Condensed Matter - Materials Science ,impedance matching ,Condensed Matter - Mesoscale and Nanoscale Physics ,SERS ,dark modes ,Materials Science (cond-mat.mtrl-sci) ,FOS: Physical sciences ,Condensed Matter - Soft Condensed Matter ,Atomic and Molecular Physics, and Optics ,plasmonics ,Electronic, Optical and Magnetic Materials ,Mesoscale and Nanoscale Physics (cond-mat.mes-hall) ,Soft Condensed Matter (cond-mat.soft) ,Electrical and Electronic Engineering ,Biotechnology ,Optics (physics.optics) ,Physics - Optics ,NPoM - Abstract
Plasmonic nanoantennas can focus light at nanometer length scales providing intense field enhancements. For the tightest optical confinements (0.5-5 nm) achieved in plasmonic gaps, the gap spacing, refractive index, and facet width play a dominant role in determining the optical properties making tuning through antenna shape challenging. We show here that controlling the surrounding refractive index instead allows both efficient frequency tuning and enhanced in-/output coupling through retardation matching as this allows dark modes to become optically active, improving widespread functionalities.
- Published
- 2023