We investigate the quantum-optical properties of the light emitted by a nanoparticle-on-mirror cavity filled with a single quantum emitter. Inspired by recent experiments, we model a dark-field setup and explore the photon statistics of the scattered light under grazing laser illumination. Exploiting analytical solutions to Maxwell's equations, we quantize the nanophotonic cavity fields and describe the formation of plasmon-exciton polaritons (or plexcitons) in the system. This way, we reveal that the rich plasmonic spectrum of the nanocavity offers unexplored mechanisms for nonclassical light generation that are more efficient than the resonant interaction between the emitter natural transition and the brightest optical mode. Specifically,...
There exists a growing interest in the properties of the light generated by hybrid systems involving...
Plasmonic nanocavities enable the confinement of molecules and electromagnetic fields within nanomet...
The large losses of plasmonic nanocavities, orders of magnitude beyond those of photonic dielectric ...
We investigate the quantum-optical properties of the light emitted by a nanoparticle-on-mirror cavit...
© 2017 Optical Society of America. One print or electronic copy may be made for personal use only. S...
When a photonic environment hosts an emitter, it heavily influences its spontaneous emission. For an...
Emission properties of a quantum emitter can be significantly modified inside nanometre-sized gaps b...
Optical properties of a quantum emitter are drastically modified inside a nanometer-sized gap betwee...
In the light-matter strong coupling regime, the excited state of quantum emitters is inextricably li...
Plasmonic nanocavities confine light in deep subwavelength volumes and in recent years have enabled ...
The interaction of emitters with plasmonic cavities (PCs) has been studied extensively during the pa...
Copyright © 2018 American Chemical Society. The strong coupling of a dense layer of molecular excito...
Nanophotonics has greatly benefited from the unique ability of surface plasmons to confine optical mo...
Plasmonic cavities can confine electromagnetic radiation to deep sub-wavelength regimes. This facili...
Photon emitters placed into an optical cavity will experience a surrounding photonic environment cha...
There exists a growing interest in the properties of the light generated by hybrid systems involving...
Plasmonic nanocavities enable the confinement of molecules and electromagnetic fields within nanomet...
The large losses of plasmonic nanocavities, orders of magnitude beyond those of photonic dielectric ...
We investigate the quantum-optical properties of the light emitted by a nanoparticle-on-mirror cavit...
© 2017 Optical Society of America. One print or electronic copy may be made for personal use only. S...
When a photonic environment hosts an emitter, it heavily influences its spontaneous emission. For an...
Emission properties of a quantum emitter can be significantly modified inside nanometre-sized gaps b...
Optical properties of a quantum emitter are drastically modified inside a nanometer-sized gap betwee...
In the light-matter strong coupling regime, the excited state of quantum emitters is inextricably li...
Plasmonic nanocavities confine light in deep subwavelength volumes and in recent years have enabled ...
The interaction of emitters with plasmonic cavities (PCs) has been studied extensively during the pa...
Copyright © 2018 American Chemical Society. The strong coupling of a dense layer of molecular excito...
Nanophotonics has greatly benefited from the unique ability of surface plasmons to confine optical mo...
Plasmonic cavities can confine electromagnetic radiation to deep sub-wavelength regimes. This facili...
Photon emitters placed into an optical cavity will experience a surrounding photonic environment cha...
There exists a growing interest in the properties of the light generated by hybrid systems involving...
Plasmonic nanocavities enable the confinement of molecules and electromagnetic fields within nanomet...
The large losses of plasmonic nanocavities, orders of magnitude beyond those of photonic dielectric ...