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    Long-Distance Distribution of Atom-Photon Entanglement Based on a Cavity-Free Cold Atomic Ensemble

    Tian-Yu Wang1,2,3,*, Ren-Hui Chen1,2,3,*, Yan Li1,2,*, Ze-Hao Shen4,*, Xiao-Song Fan1,2,3, Zheng-Bang Ju1,2,3, Tian-Ci Tang1,2,3, Xia-Wei Li1,2,3, Jing-Yuan Peng1,2,3 et al.

    Zhi-Yuan Zhou1,2,3,†, Wei Zhang3,‡, Guang-Can Guo1,2,3, and Bao-Sen Shi1,2,3,§

    • *These authors contributed equally to this work.
    • †Contact author: zyzhouphy@ustc.edu.cn
    • ‡Contact author: changong@ustc.edu.cn
    • §Contact author: drshi@ustc.edu.cn

    Phys. Rev. Lett. 136, 050801 – Published 6 February, 2026

    DOI: https://doi.org/10.1103/fzz2-3xf6

    Abstract

    Constructing a quantum memory node with the ability of long-distance atom-photon distribution is the essential task for future quantum networks, enabling distributed quantum computing, quantum cryptography, and remote sensing. Here we report the demonstration of a quantum-network node with a simple cavity-free cold atomic ensemble. This node gives an initial retrieval efficiency of approximately 55% and memory lifetime of 160  μs for atomic qubits. With the aid of a high-efficiency and polarization-independent quantum frequency conversion (QFC) module, the generated entangled photon in the node at 780-nm wavelength is converted to telecom S band at 1522 nm, enabling atom-photon distribution over long distance. We observe an entanglement fidelity between the atoms and telecom photon exceeding 80% after photon transmission over 20-km fiber with an end excitation probability of 0.2% and repetition of 1.7 kHz, the remaining infidelity being dominated by atomic decoherence. The low-noise QFC with an external efficiency up to 48.5% gives a signal-to-noise ratio of 6.9 for transmitted photons with fiber length up to 100 km, laying the cornerstone for entanglement distribution at a hundred-km level. This result provides a new platform toward the realization of a long-distance quantum network.

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