Çoklu foton i̇şlemleri, dolaniklilik ve hibrid sistemlerde kuantum yürüyüşleri:Devre kuantum elekrodinamiği ve nitrojen boşluk merkezleri
2014
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Advisor: Prof. Dr. Özgür Esat Müstecaplıoğlu
Abstract (EN)
In this thesis, we first examine transfer of particle entanglement and spin squeezing between atomic and photonic subsystems in optical cavities coupled by two-photon exchange. Each cavity contains a single atom, interacting with cavity photons with a two-photon cascade transition. Particle entanglement is characterized by evaluating optimal spin squeezing inequalities for the cases of initially separable and entangled two-photon states. It is found that particle entanglement is first generated among the photons in separate cavities and then transferred to the atoms. The underlying mechanism is recognized as an intercavity two-axis twisting spin squeezing interaction, induced by two-photon exchange, and its optimal combination with the intracavity atom-photon coupling. Secondly, we investigate spin squeezing, quantum entanglement, and second-order coherence in two coupled, driven, dissipative, nonlinear cavities. Solving the quantum optical master equation of the system numerically in the steady state, we calculate the zero-time delay second-order correlation function for the coherent, genuine two-mode entanglement parameters, an optimal spin squeezing inequality associated with particle entanglement, concurrence, quantum entropy, and logarithmic negativity. We compare these quantum statistical properties for the cavities coupled with either single- or two-photon exchange. In the final part of the thesis, we propose a quantum-electrodynamics scheme for implementing the discrete-time, coined quantum walk with the walker corresponding to the phase degree of freedom for a quasimagnon field realized in an ensemble of nitrogen-vacancy centers in diamond. The coin is realized as a superconducting flux qubit. Our scheme improves on an existing proposal for implementing quantum walks in cavity quantum electrodynamics by removing the cumbersome requirement of varying drive-pulse durations according to mean quasiparticle number.
Author
Dr. Ali Ümit Cemal Hardal
How to Cite
Ali Ümit Cemal Hardal (Doctorate thesis). Çoklu foton i̇şlemleri, dolaniklilik ve hibrid sistemlerde kuantum yürüyüşleri:Devre kuantum elekrodinamiği ve nitrojen boşluk merkezleri, 2014, Koç University.
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