Experimental Efficient Source-Independent Quantum Conference Key Agreement

Fuente: arXiv
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Main Authors: Hua, Wen-Ji, Xiao, Yi-Ran, Bao, Yu, Yin, Hua-Lei, Chen, Zeng-Bing
Format: Preprint
Published: 2025
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author Hua, Wen-Ji
Xiao, Yi-Ran
Bao, Yu
Yin, Hua-Lei
Chen, Zeng-Bing
author_facet Hua, Wen-Ji
Xiao, Yi-Ran
Bao, Yu
Yin, Hua-Lei
Chen, Zeng-Bing
contents Multipartite entanglement enables secure group key distribution among multiple users while providing immunity against hacking attacks targeting source devices, thereby realizing source-independent quantum conference key agreement (SI-QCKA). However, previous experimental demonstrations of SI-QCKA have encountered substantial technical challenges, primarily due to the low efficiency and scalability limitations inherent in the generation and distribution of multipartite entanglement. Here, we experimentally demonstrate a scalable and efficient SI-QCKA protocol using polarization-entangled photon pairs in a three-user star network, where Greenberger-Horne-Zeilinger correlations are realized via a post-matching method. We achieve a secure group key rate of $2.11 \times 10^{4}$ bits/s under the single-user channel transmission of 1.64 $\times$ $10^{-1}$ in a symmetric channel loss network. Additionally, we conduct six sets of experiments to investigate the impact of varying channel transmission and random basis selection probabilities on secure key rates. Our work establishes an efficient pathway for SI-QCKA and demonstrates potential scalability for future large-scale multi-user quantum networks.
format Preprint
id arxiv_https___arxiv_org_abs_2512_20038
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Experimental Efficient Source-Independent Quantum Conference Key Agreement
Hua, Wen-Ji
Xiao, Yi-Ran
Bao, Yu
Yin, Hua-Lei
Chen, Zeng-Bing
Quantum Physics
Multipartite entanglement enables secure group key distribution among multiple users while providing immunity against hacking attacks targeting source devices, thereby realizing source-independent quantum conference key agreement (SI-QCKA). However, previous experimental demonstrations of SI-QCKA have encountered substantial technical challenges, primarily due to the low efficiency and scalability limitations inherent in the generation and distribution of multipartite entanglement. Here, we experimentally demonstrate a scalable and efficient SI-QCKA protocol using polarization-entangled photon pairs in a three-user star network, where Greenberger-Horne-Zeilinger correlations are realized via a post-matching method. We achieve a secure group key rate of $2.11 \times 10^{4}$ bits/s under the single-user channel transmission of 1.64 $\times$ $10^{-1}$ in a symmetric channel loss network. Additionally, we conduct six sets of experiments to investigate the impact of varying channel transmission and random basis selection probabilities on secure key rates. Our work establishes an efficient pathway for SI-QCKA and demonstrates potential scalability for future large-scale multi-user quantum networks.
title Experimental Efficient Source-Independent Quantum Conference Key Agreement
topic Quantum Physics
url https://arxiv.org/abs/2512.20038