Exploring quantum optics and quantum information: from the interferometer to the generation of correlated photons
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Universidade Federal do Rio de Janeiro
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This thesis investigates, in photonics, how to design, diagnose, and exploit open quantum dynamics and light–matter interactions along three complementary fronts. First, we present a programmable interferometer in linear optics in which the path degree of freedom encodes the system and polarization serves as an ancilla qubit to implement Kraus maps; we implement decoherence and dissipation channels (dephasing, amplitude damping, and Pauli), including finite-temperature extensions (GAD/SGAD). Next, using a recently defined quantum-reality quantifier, we demonstrate that Alice’s local operations correlate with the erasure of the reality of observables in Bob’s photon in a scenario of causally disconnected measurements; a modified optical quantum eraser, with entangled pairs and quantum-state tomography, confirms this correlation experimentally. Finally, we investigate the generation and control of Stokes–anti-Stokes correlations in Raman scattering and propose an experimental route to (i) analyze orbital-angular-momentum conservation in this process and (ii) study field-induced anisotropy in polar liquids under a uniform electric field.
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