We investigate gain in microwave photonic cavities coupled to voltage-biased double quantum dot systems with an arbitrarily strong dot-lead coupling and with a Holstein-like light-matter interaction, by employing the diagrammatic Keldysh nonequilibrium Green's function approach. We compute out-of-equilibrium properties of the cavity: its transmission, phase response, mean photon number, power spectrum, and spectral function. We show that by the careful engineering of these hybrid light-matter systems, one can achieve a significant amplification of the optical signal with the voltage-biased electronic system serving as a gain medium. We also study the steady-state current across the device, identifying elastic and inelastic tunneling process...
We theoretically investigate charge transport through electronic bands of a mesoscopic one-dimension...
We theoretically investigate charge transport through electronic bands of a mesoscopic one-dimension...
International audienceUnderstanding the interaction between cavity photons and electronic nanocircui...
Motivated by recent experiments on the generation of coherent light in engineered hybrid quantum sys...
International audienceWe use a quantum path-integral approach to describe the behavior of a microwav...
We investigate theoretically the properties of the photon state and the electronic transport in a sy...
Strongly driving a two-level quantum system with light leads to a ladder of Floquet states separated...
We present a quantum optics approach to describe the influence of electron-acoustic phonon coupling ...
This article reviews our recent work on the development of nanophotonic devices for quantum informat...
This article reviews our recent work on the development of nanophotonic devices for quantum informat...
Recent experimental progress in coupling nanoscale conductors to superconducting microwave cavities ...
The electron tunneling through an ultrasmall quantum dot in the presence of time-dependent microwave...
Ability to tune the group velocity of a light pulse is of great importance for optical communication...
In this thesis, I model quantum mechanical systems and investigate their quantum properties based on...
We investigate the nonclassical states of light that emerge in a microwave resonator coupled to a pe...
We theoretically investigate charge transport through electronic bands of a mesoscopic one-dimension...
We theoretically investigate charge transport through electronic bands of a mesoscopic one-dimension...
International audienceUnderstanding the interaction between cavity photons and electronic nanocircui...
Motivated by recent experiments on the generation of coherent light in engineered hybrid quantum sys...
International audienceWe use a quantum path-integral approach to describe the behavior of a microwav...
We investigate theoretically the properties of the photon state and the electronic transport in a sy...
Strongly driving a two-level quantum system with light leads to a ladder of Floquet states separated...
We present a quantum optics approach to describe the influence of electron-acoustic phonon coupling ...
This article reviews our recent work on the development of nanophotonic devices for quantum informat...
This article reviews our recent work on the development of nanophotonic devices for quantum informat...
Recent experimental progress in coupling nanoscale conductors to superconducting microwave cavities ...
The electron tunneling through an ultrasmall quantum dot in the presence of time-dependent microwave...
Ability to tune the group velocity of a light pulse is of great importance for optical communication...
In this thesis, I model quantum mechanical systems and investigate their quantum properties based on...
We investigate the nonclassical states of light that emerge in a microwave resonator coupled to a pe...
We theoretically investigate charge transport through electronic bands of a mesoscopic one-dimension...
We theoretically investigate charge transport through electronic bands of a mesoscopic one-dimension...
International audienceUnderstanding the interaction between cavity photons and electronic nanocircui...