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    Long-distance cascaded fluorescence of cold cesium atoms coupled to an optical nanofiber

    M. Sadeghi*, W. Crump, S. Parkins, and M. D. Hoogerland†

    • Department of Physics and Dodd-Walls Centre for Photonic and Quantum Technologies, University of Auckland, Private Bag 92019, Auckland, New Zealand

    • *Contact author: msad106@aucklanduni.ac.nz
    • †Contact author: m.hoogerland@auckland.ac.nz

    Phys. Rev. A 113, 023719 – Published 19 February, 2026

    DOI: https://doi.org/10.1103/jt3z-mf13

    Abstract

    We demonstrate an experimental realization of cascaded resonance fluorescence over a 64-meter delay between two spatially and temporally independent ensembles of laser-cooled cesium atoms coupled to an optical nanofiber. Spontaneously emitted photons from a strongly driven first ensemble are guided through a standard fiber, reflected by a fiber Bragg grating mirror, and interact with a second ensemble, producing a unidirectional two-node cascaded system. The cascaded fluorescence spectrum is broadened and blueshifted relative to the original fluorescence spectrum. Our simple model reproduces the power broadening and the cascaded fluorescence spectrum, as well as the ratio of cascaded to original photon flux, giving insight into non-Markovian dynamics. Our results establish a long-distance one-way cascaded atom-photon interface, providing a stepping stone toward a fiber-based platform for quantum networking.

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