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Large-scale quantum communication networks with integrated photonics

delete2026-02-11
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OA
AI
Y
Yun Zheng *
H
Hanyu Wang
X
Xinyu Jia
J
Jiahui Huang
H
Huihong Yuan
C
Chonghao Zhai
J
Junhao Dai
J
Jingbo Shi
L
Lei Zhang
X
Xuguang Zhang
M
Minxue Zhuang
J
Jinchang Liu
J
Jun Mao
T
Tianxiang Dai
Z
Zhaorong Fu
Y
Yuqing Jiao
时尧成 (Yaocheng Shi)
戴道锌 (Daoxin Dai)
王兴君 (Xingjun Wang)
Y
Yan Li
龚旗煌 (Qihuang Gong)
Z
Zhiliang Yuan
L
Lin Chang *
J
Jianwei Wang *
DOI:10.1038/s41586-026-10152-zdelete
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Abstract

Abstract

En 中文
Quantum key distribution (QKD) makes use of the principles of quantum mechanics to enable provably secure communication1,2. One substantial challenge persists in building large-scale QKD networks with many clients over long communication distances3. Although quantum relays continue to pose practical difficulties4, existing trusted-node networks5–9, point-to-multipoint networks10,11 and wavelength-multiplexed entanglement networks12,13 encounter issues such as reliance on trusted intermediaries or limited distances. Twin-field quantum key distribution (TF-QKD) provides a compelling architecture that can overcome those issues while enhancing communication distance14. Although long-distance point-to-point TF-QKD has been achieved15–21, realizing large-scale networks requires scalable quantum devices. Here we report a proof-of-principle demonstration of an integrated-photonics TF-QKD network with exceptional scalability and reliability. This network includes 20 independent client-side QKD transmitter chips with one server-side optical microcomb chip. The microcomb generates a broad range of ultralow-noise coherent frequency combs with Hz-level linewidths, which serve as seeds and references for all client chips. Each client chip regenerates ultralow-noise light phase-locked to microcombs and prepares quantum keys. We sequentially implement pairwise QKD across 20 client chips through ten wavelength-multiplexed channels, with each surpassing the repeaterless bound at 370 km in spooled fibre, achieving a networking capability (client pairs × communication distance) of 3,700 km. We further demonstrate the wafer-scale reproducibility of both server-side microcomb chips and client-side QKD transmitter chips, together establishing system-level scalability. Combining mass-manufacturability, cost-effectiveness and high scalability of integrated photonics with long-distance quantum communication represents a viable path to large-scale quantum networks. A lab-scale proof-of-principle demonstration of a quantum network comprising one server chip and 20 client photonic chips implementing twin-field quantum key distribution shows excellent scalability and reliability and yields a pathway towards future large-scale networks.
Keywords:
Frequency combs
Microresonators
Quantum information
Quantum optics
Science
Humanities and Social Sciences
multidisciplinary
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Nature cover
Nature
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E
eindhoven university of technology
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985
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B
Beijing University of Posts and Telecommunications
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Zhejiang University
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Beijing Academy of Quantum Information Sciences
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Peking University
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