Since the realization of high-quality microwave cavities coupled to quantum dots, one can envisage the possibility to investigate the coherent interaction of light and matter in semiconductor quantum devices. Here we study a parallel double quantum dot device operating as single-electron splitter interferometer, with each dot coupled to a local photon cavity. We explore how quantum correlation and entanglement between the two separated cavities are generated by the coherent transport of a single electron passing simultaneously through the two different dots. We calculate the covariance of the cavity occupations by use of a diagrammatic perturbative expansion based on Keldysh Green's functions to the fourth order in the dot-cavity interactio...
Transferring entangled states between photon pairs is essential in quantum communication. Semiconduc...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single ...
International audienceUnderstanding the interaction between cavity photons and electronic nanocircui...
Recent experimental progress in coupling nanoscale conductors to superconducting microwave cavities ...
We present a theoretical study of a hybrid circuit-quantum electrodynamics system composed of two se...
In this thesis, I model quantum mechanical systems and investigate their quantum properties based on...
We investigate the effect of local electron correlations on transport through parallel quantum dots....
We describe the conditional and unconditional dynamics of two coupled quantum dots when one dot is s...
Controlled non-local energy and coherence transfer enables light harvesting in photosynthesis and no...
Controlled non-local energy and coherence transfer enables light harvesting in photosynthesis and no...
Controlled non-local energy and coherence transfer enables light harvesting in photosynthesis and no...
We simulated the radiative response of the cavity quantum electrodynamics (QED) coupled to the doubl...
It is shown that for two open quantum dots connected by a wire, “bound states in the continuum” of a...
Quantum dots in cavities have been shown to be very bright sources of indistinguishable single photo...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single ...
Transferring entangled states between photon pairs is essential in quantum communication. Semiconduc...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single ...
International audienceUnderstanding the interaction between cavity photons and electronic nanocircui...
Recent experimental progress in coupling nanoscale conductors to superconducting microwave cavities ...
We present a theoretical study of a hybrid circuit-quantum electrodynamics system composed of two se...
In this thesis, I model quantum mechanical systems and investigate their quantum properties based on...
We investigate the effect of local electron correlations on transport through parallel quantum dots....
We describe the conditional and unconditional dynamics of two coupled quantum dots when one dot is s...
Controlled non-local energy and coherence transfer enables light harvesting in photosynthesis and no...
Controlled non-local energy and coherence transfer enables light harvesting in photosynthesis and no...
Controlled non-local energy and coherence transfer enables light harvesting in photosynthesis and no...
We simulated the radiative response of the cavity quantum electrodynamics (QED) coupled to the doubl...
It is shown that for two open quantum dots connected by a wire, “bound states in the continuum” of a...
Quantum dots in cavities have been shown to be very bright sources of indistinguishable single photo...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single ...
Transferring entangled states between photon pairs is essential in quantum communication. Semiconduc...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single ...
International audienceUnderstanding the interaction between cavity photons and electronic nanocircui...