Real-Time Tunable Strong Coupling: From Individual Nanocavities to Metasurfaces
Author(s) -
Jiani Huang,
Andrew J. Traverso,
Guoce Yang,
Maiken H. Mikkelsen
Publication year - 2019
Publication title -
acs photonics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.735
H-Index - 89
ISSN - 2330-4022
DOI - 10.1021/acsphotonics.8b01743
Subject(s) - plasmon , coupling (piping) , nanophotonics , optoelectronics , cavity quantum electrodynamics , lasing threshold , common emitter , materials science , resonance (particle physics) , physics , quantum , atomic physics , wavelength , quantum mechanics , open quantum system , metallurgy
Strong light–matter coupling, characterized by a coherent exchange of energy between an emitter and cavity, plays an important role in, for example, quantum information science and thresholdless lasing. To achieve strong coupling, precise spatial and spectral overlap between the emitter and cavity is required, presenting a significant challenge to move from individually strongly coupled cavities to a large number of cavity-coupled systems, as required for future practical applications. Here we demonstrate a versatile platform for realizing strong coupling that scales uniformly from individual nanocavities up to millimeter-scale metasurfaces, while the coupling strength can be tuned dynamically. Fluorescent dye molecules are sandwiched between silver nanocubes and a metallic film creating a plasmonic cavity with a mode volume of only ∼0.002 (λ/n)3. A prominent anticrossing behavior is observed which corresponds to a large Rabi splitting energy of 152 meV. The plasmon resonance can be tuned up to 45 nm (∼21...
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