We demonstrate a deterministic approach to the implementation of solid-state cavity quantum electrodynamics (QED) systems based on a precise spatial and spectral overlap between a single self-assembled quantum dot and a photonic crystal membrane nanocavity. By fine-tuning nanocavity modes with a high quality factor into resonance with any given quantum dot exciton, we observed clear signatures of cavity QED (such as the Purcell effect) in all fabricated structures. This approach removes the major hindrances that had limited the application of solid-state cavity QED and enables the realization of experiments previously proposed in the context of quantum information processing
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single ...
This thesis presents a viable route towards the implementation of quantum computing utilizing quantu...
We demonstrate non-perturbative coupling between a single self-assembled InGaAs quantum dot and an e...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single ...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single ...
A single quantum dot embedded in a photonic crystal defect cavity allows for the investigation of ca...
The first solid state structures for cavity quantum electrodynamic studies were realized analog to e...
The first solid state structures for cavity quantum electrodynamic studies were realized analog to e...
Cavity quantum electrodynamics (QED) systems allow the study of a variety of fundamental quantum-opt...
Cavity quantum electrodynamics (QED) systems allow the study of a variety of fundamental quantum-opt...
We show how cavity quantum electrodynamics using a tunable photonic crystal nanocavity in the strong...
Semiconductor quantum dots (QDs) have emerged as promising candidates for studying quantum optical p...
Semiconductor quantum dots (QDs) have emerged as promising candidates for studying quantum optical p...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single ...
This thesis presents a viable route towards the implementation of quantum computing utilizing quantu...
We demonstrate non-perturbative coupling between a single self-assembled InGaAs quantum dot and an e...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single ...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single ...
A single quantum dot embedded in a photonic crystal defect cavity allows for the investigation of ca...
The first solid state structures for cavity quantum electrodynamic studies were realized analog to e...
The first solid state structures for cavity quantum electrodynamic studies were realized analog to e...
Cavity quantum electrodynamics (QED) systems allow the study of a variety of fundamental quantum-opt...
Cavity quantum electrodynamics (QED) systems allow the study of a variety of fundamental quantum-opt...
We show how cavity quantum electrodynamics using a tunable photonic crystal nanocavity in the strong...
Semiconductor quantum dots (QDs) have emerged as promising candidates for studying quantum optical p...
Semiconductor quantum dots (QDs) have emerged as promising candidates for studying quantum optical p...
Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single ...
This thesis presents a viable route towards the implementation of quantum computing utilizing quantu...
We demonstrate non-perturbative coupling between a single self-assembled InGaAs quantum dot and an e...