Combining the quantum optical properties of single-photon emitters with the strong near-field interactions available in nanophotonic and plasmonic systems is a powerful way of creating quantum manipulation and metrological functionalities. The ability to actively and dynamically modulate emitter-environment interactions is of particular interest in this regard. While thermal, mechanical and optical modulation have been demonstrated, electrical modulation has remained an outstanding challenge. Here we realize fast, all-electrical modulation of the near-field interactions between a nanolayer of erbium emitters and graphene, by in-situ tuning the Fermi energy of graphene. We demonstrate strong interactions with a >1000-fold increased decay rat...
Graphene plasmons have been found to be an exciting plasmonic platform, thanks to their high field c...
Graphene supports surface plasmons bound to an atomically thin layer of carbon, characterized by tun...
This thesis reports a research work on the development of graphene plasmonic gratings for applicatio...
Combining the quantum optical properties of single-photon emitters with the strong near-field intera...
Controlling the energy flow processes and the associated energy relaxation rates of a light emitter ...
The properties of an electron in an atom or molecule are not fixed; rather they are a function of th...
Quantum nanophotonics aims at studying the interaction between matter and single photons at the nano...
We investigate the spontaneous emission rate of a two-level quantum emitter near a graphene-coated ...
In this work, we present a systematic study of the plasmon modes in a system of vertically stacked p...
The extraordinary properties of graphene make it a very promising material for optoelectronics. Howe...
We show that it is possible to realize significant nonlinear optical interactions at the few photon ...
Surface plasmons supported by metallic nanostructures interact strongly with light and confine it in...
Graphene flakes acting as photonic nanoantennas may sustain strong electromagnetic field localizatio...
We show that the Higgs mode of a superconductor, which is usually challenging to observe by far-fiel...
In this thesis we propose new, versatile schemes to control light-matter interactions at the nanosca...
Graphene plasmons have been found to be an exciting plasmonic platform, thanks to their high field c...
Graphene supports surface plasmons bound to an atomically thin layer of carbon, characterized by tun...
This thesis reports a research work on the development of graphene plasmonic gratings for applicatio...
Combining the quantum optical properties of single-photon emitters with the strong near-field intera...
Controlling the energy flow processes and the associated energy relaxation rates of a light emitter ...
The properties of an electron in an atom or molecule are not fixed; rather they are a function of th...
Quantum nanophotonics aims at studying the interaction between matter and single photons at the nano...
We investigate the spontaneous emission rate of a two-level quantum emitter near a graphene-coated ...
In this work, we present a systematic study of the plasmon modes in a system of vertically stacked p...
The extraordinary properties of graphene make it a very promising material for optoelectronics. Howe...
We show that it is possible to realize significant nonlinear optical interactions at the few photon ...
Surface plasmons supported by metallic nanostructures interact strongly with light and confine it in...
Graphene flakes acting as photonic nanoantennas may sustain strong electromagnetic field localizatio...
We show that the Higgs mode of a superconductor, which is usually challenging to observe by far-fiel...
In this thesis we propose new, versatile schemes to control light-matter interactions at the nanosca...
Graphene plasmons have been found to be an exciting plasmonic platform, thanks to their high field c...
Graphene supports surface plasmons bound to an atomically thin layer of carbon, characterized by tun...
This thesis reports a research work on the development of graphene plasmonic gratings for applicatio...