Classical-to-quantum transfer of geometric phase for non-interferometric phase measurement and manipulation of quantum state

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dc.contributor.author Kumar, Vimlesh
dc.contributor.author Kaushik, Chahat
dc.contributor.author Ebrahim-Zadeh, M.
dc.contributor.author Chandrashekar, C. M.
dc.contributor.author Samanta, G.K.
dc.coverage.spatial United States of America
dc.date.accessioned 2025-07-16T10:50:14Z
dc.date.available 2025-07-16T10:50:14Z
dc.date.issued 2025-06
dc.identifier.citation Kumar, Vimlesh; Kaushik, Chahat; Ebrahim-Zadeh, M.; Chandrashekar, C. M. and Samanta, G.K., "Classical-to-quantum transfer of geometric phase for non-interferometric phase measurement and manipulation of quantum state", arXiv, Cornell University Library, DOI: arXiv:2505.20108, Jun. 2025.
dc.identifier.uri https://doi.org/10.48550/arXiv.2505.20108
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/11643
dc.description.abstract The geometric phase, originating from the cyclic evolution of a state, such as polarization on the Poincaré sphere, is typically measured through interferometric approaches that often include unwanted contributions from the dynamic phase. Here, we present a non-interferometric technique based on quantum correlation of pair photons to measure the geometric phase of a classical beam. The transfer of geometric phase of the classical pump beam arising from the cyclic evolution of its polarization state on the Poincaré sphere onto the polarization-entangled pair photons generated via spontaneous parametric down-conversion in a Sagnac interferometer enables easy control over the quantum state. Characterization of the generated quantum states reveals that the geometric phase of the pump beam controls the coincidence counts, entanglement visibility, Bell's parameter, quantum state tomography, and fidelity in close agreement with theoretical predictions. We observe sinusoidal modulation of the Bell's parameter and state fidelity with changes in the geometric phase, resulting in transitions between orthogonal Bell states and Bell-like maximally entangled states. Our results establish the geometric phase of the classical pump as a tunable parameter for quantum state control, offering a compact, passive platform for phase manipulation in quantum photonic systems, enabling geometric phase-based quantum gates, and compensating unwanted phase acquired by the quantum state on propagation.
dc.description.statementofresponsibility by Vimlesh Kumar, Chahat Kaushik, M. Ebrahim-Zadeh, C. M. Chandrashekar and G. K. Samanta
dc.language.iso en_US
dc.publisher Cornell University Library
dc.title Classical-to-quantum transfer of geometric phase for non-interferometric phase measurement and manipulation of quantum state
dc.type Article
dc.relation.journal arXiv


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