Nanogaps supporting cavity plasmonic modes with unprecedented small mode volume are attractive platforms for tailoring the properties of light–matter interactions at the nanoscale and revealing new physics. Hitherto, there is a concerning lack of analytical solutions to divide the complex interactions into their different underlying mechanisms to gain a better understanding that can foster enhanced designs. Bowtie apertures are viewed as an effective and appealing nanocavity and are studied here within the analytical frame of conformal transformation. We show how the non-radiative Purcell enhancement of a quantum emitter within the bowtie nanocavity depends strongly not only on the geometry of the nanocavity, but also on the position and or...
Plasmonic nanoantennas have revolutionized the way we study and modulate light–matter interaction. D...
The unprecedented advance experienced by nanofabrication techniques and plasmonics research over the...
Developing highly enhanced plasmonic nanocavities allows direct observation of light–matter interact...
In this work, bowtie nanoantennas and nanocavities are analyzed using the conformal transformation t...
Symmetries play an important role in many branches of physics and enable simplification of the mathe...
Emission properties of a quantum emitter can be significantly modified inside nanometre-sized gaps b...
Plasmonic nanocavities confine light in deep subwavelength volumes and in recent years have enabled ...
The unprecedented advance experienced by nano- fabrication techniques and plasmonics research over t...
Nanophotonics has greatly benefited from the unique ability of surface plasmons to confine optical mo...
When a photonic environment hosts an emitter, it heavily influences its spontaneous emission. For an...
Photon emitters placed into an optical cavity will experience a surrounding photonic environment cha...
Understanding and controlling the light-matter interaction is of fundamental importance for science ...
Plasmonic nanocavities with sub-5-nm gaps between nanoparticles support multiple resonances possessi...
We investigate the quantum-optical properties of the light emitted by a nanoparticle-on-mirror cavit...
A full analytical description of a bowtie nanoantenna excited by a localized emitter is presented us...
Plasmonic nanoantennas have revolutionized the way we study and modulate light–matter interaction. D...
The unprecedented advance experienced by nanofabrication techniques and plasmonics research over the...
Developing highly enhanced plasmonic nanocavities allows direct observation of light–matter interact...
In this work, bowtie nanoantennas and nanocavities are analyzed using the conformal transformation t...
Symmetries play an important role in many branches of physics and enable simplification of the mathe...
Emission properties of a quantum emitter can be significantly modified inside nanometre-sized gaps b...
Plasmonic nanocavities confine light in deep subwavelength volumes and in recent years have enabled ...
The unprecedented advance experienced by nano- fabrication techniques and plasmonics research over t...
Nanophotonics has greatly benefited from the unique ability of surface plasmons to confine optical mo...
When a photonic environment hosts an emitter, it heavily influences its spontaneous emission. For an...
Photon emitters placed into an optical cavity will experience a surrounding photonic environment cha...
Understanding and controlling the light-matter interaction is of fundamental importance for science ...
Plasmonic nanocavities with sub-5-nm gaps between nanoparticles support multiple resonances possessi...
We investigate the quantum-optical properties of the light emitted by a nanoparticle-on-mirror cavit...
A full analytical description of a bowtie nanoantenna excited by a localized emitter is presented us...
Plasmonic nanoantennas have revolutionized the way we study and modulate light–matter interaction. D...
The unprecedented advance experienced by nanofabrication techniques and plasmonics research over the...
Developing highly enhanced plasmonic nanocavities allows direct observation of light–matter interact...