Stimulated Phase Conjugation of Structured Single Photons Through Cascaded Parametric Down-Conversion

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Université d'Ottawa | University of Ottawa

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Stimulated parametric down-conversion (StimPDC) can act as a phase-conjugating nonlinear process when one of the down-converted modes is driven by a bright classical field. In this regime, the stimulated contribution to the nonlinear interaction dominates over the spontaneous background and the generated idler reproduces the conjugated phase of the seed with high fidelity. This behaviour has enabled classical turbulence-mitigation schemes in free-space optical channels, where a probe beam acquires a distorted wavefront that is deterministically conjugated in a nonlinear crystal and corrected upon reverse propagation. This thesis examines whether the same mechanism can be extended to the single-photon regime. The analysis begins by reviewing the spatial-mode structure of classical StimPDC using a Laguerre–Gaussian description of the nonlinear interaction. The turbulence-mitigation protocol is then summarized to clarify why high-fidelity phase conjugation is central to its operation. The main theoretical development introduces the single-photon–seeded version of the process, referred to as SPS-PDC. Using the full biphoton amplitude of SPS-PDC, the idler mean photon number is derived and shown to contain coherent spontaneous and stimulated contributions of comparable magnitude when only one photon occupies the seeded mode. Because the stimulated term no longer overwhelms the spontaneous background, the generated idler does not reproduce a unique conjugated wavefront. This result identifies a fundamental limit: perfect phase conjugation cannot be achieved with a single-photon seed in a second-order nonlinear interaction of this type. The implications of this scaling behaviour are examined in the context of turbulence mitigation and quantum key distribution. Although a single-photon version of the classical protocol would offer intrinsic security, the absence of deterministic conjugation prevents reliable wavefront correction. The thesis concludes by outlining an experimental approach for resolving the joint spatial structure of the two idler photons produced in a cascaded parametric down-conversion process. Such measurements would directly test the predicted division between spontaneous and stimulated contributions and further clarify the boundary between classical and quantum phase-conjugation regimes.

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Quantum optics, Nonlinear optics, Quantum communication, Parametric down-conversion

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