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    Experimental Efficient Source-Independent Quantum Secret Sharing against Coherent Attacks

    Yi-Ran Xiao1,2,*, Hua-Lei Yin2,1,3,*,†, Wen-Ji Hua1,2,*, Xiao-Yu Cao1,2, and Zeng-Bing Chen1,‡

    • *These authors contributed equally to this work.
    • †Contact author: hlyin@ruc.edu.cn
    • ‡Contact author: zbchen@nju.edu.cn

    Phys. Rev. Lett. 135, 150801 – Published 6 October, 2025

    DOI: https://doi.org/10.1103/7wrk-p6gl

    Abstract

    Source-independent quantum secret sharing (SI QSS), while essential for secure multi-user cryptographic operations in quantum networks, faces significant implementation challenges stemming from the inherent complexity of generating and distributing multipartite entangled states. Recently, a resource-efficient SI QSS protocol utilizing entangled photon pairs combined with a postmatching method has been proposed to address this limitation. In this Letter, we report an experimental demonstration of this protocol using high-fidelity polarization-entangled photon pairs in a star topology. For a three-user network, we obtain secure key rates of 21.18, 4.69, and 1.71 kbps under single-user channel losses of 7.6, 10.9, and 12.9 dB respectively. Furthermore, under conditions of equal channel loss per user, we achieve secure key rates of 6.97, 6.46, and 5.88 kbps for three-, four-, and five-user scenarios respectively. These results demonstrate the advantageous independence of the key rate from the number of users. Our Letter paves the way for large-scale deployment of SI QSS in multiuser quantum networks.

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