Quantum Information and Quantum Correlations of Single-Photon Emitters

Christoph Thiel · OPUS FAU (Kooperativer Bibliotheksverbund Berlin-Brandenburg (KOBV), on behalf of the Universitätsbibliothek Erlangen-Nürnberg) · 2010

This thesis summarizes investigations on quantum correlations in the fluorescence light of single trapped atoms. The results found have applications in the broad field of quantum information science: it is shown how to overcome classical imaging boundaries using a new developed scheme of quantum imaging, how to project and engineer correlated quantum states in the ground states of multi-level atoms by detecting their fluorescence light and how to prove the quantum nature of these correlations using fundamental tests of quantum information science. Without the need of further introduction to these topics it is interesting to note at this early point that all correlations observed are indeed of quantum nature and show in particular entanglement features, while initially the system under consideration is entirely uncorrelated and the only intervention comes along with the measurement process itself. Therefore, this thesis is embedded into a current field of research activities in the area of quantum information science which is commonly referred to as measurement-induced entanglement. In the first part of this thesis, the correlated photon signal as measured in the fluorescence light of single-photon emitters is at the focus of investigations. It is shown that this correlated signal can be used to overcome classical signals in terms of resolution when applied to image processing. In the second part, the fluorescence signal of a system of multi-level atoms is used to project correlated quantum states into the long-lived ground levels of the atoms. Hereby, a broad variety of entangled quantum states can be generated, ranging from symmetric states like the W-states and GHZ-states to arbitrary total angular momentum eigenstates. Finally, the last part of this thesis takes a closer look at the fundamental physical processes inherent in all schemes and applications investigated throughout the thesis. There, amongst others we investigate Bell-type inequalities that are able to prove the quantum nature of the correlations.

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