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Cavity-mediated hybridization of several molecules in the strong coupling regime
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Molecular complexes are held together via a variety of bonds, but they all share the common feature that their individual entities are in contact. In this work, we introduce and demonstrate the concept of a \textit{molecular optical bond}, resulting from the far-field electromagnetic coupling of several molecules via a shared mode of an optical microcavity. We discuss a collective enhancement of the vacuum Rabi splitting and study super- and sub-radiant states that arise from the cavity-mediated coupling both in the resonant and dispersive regimes. Moreover, we demonstrate a two-photon transition that emerges between the ground and excited states of the new optical compound. Our experimental data are in excellent agreement with the predictions of the Tavis-Cummings Hamiltonian and open the door to the realization of hybrid light-matter materials.
Forward citations
Cited by 2 Pith papers
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A high-resolution molecular spin-photon interface at telecommunications wavelengths
An organo-erbium molecular crystal provides a high-resolution spin-photon interface, enabling optical spin polarization and spin-state/site-selective readout at telecommunications wavelengths.
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Cavity QED with molecular defects coupled to a photonic crystal cavity
Two DBT molecules in an anthracene crystal were tuned into resonance in a photonic crystal cavity, showing collective cavity QED signatures with cooperativity C≈0.5.
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