Field Test of Twin-Field Quantum Key Distribution through Sending-or-Not-Sending over 428 km

量子密钥分配 中继器(钟表) 计算机科学 钥匙(锁) 领域(数学) 计算机网络 量子 电信 物理 计算机安全 编码(内存) 数学 量子力学 人工智能 纯数学
作者
Hui Liu,Cong Jiang,Hao-Tao Zhu,Mi Zou,Zong‐Wen Yu,Xiao‐Long Hu,Xu Hai,Shi-Zhao Ma,Zhi-Yong Han,Jiu-Peng Chen,Yunqi Dai,Shi-Biao Tang,Weijun Zhang,Hao Li,Lixing You,Zhen Wang,Yong Hua,Hongkun Hu,Hongbo Zhang,Fei Zhou
出处
期刊:Physical Review Letters [American Physical Society]
卷期号:126 (25) 被引量:102
标识
DOI:10.1103/physrevlett.126.250502
摘要

Quantum key distribution endows people with information-theoretical security in communications. Twin-field quantum key distribution (TF-QKD) has attracted considerable attention because of its outstanding key rates over long distances. Recently, several demonstrations of TF-QKD have been realized. Nevertheless, those experiments are implemented in the laboratory, and therefore a critical question remains about whether the TF-QKD is feasible in real-world circumstances. Here, by adopting the sending-or-not-sending twin-field QKD (SNS-TF-QKD) with the method of actively odd parity pairing (AOPP), we demonstrate a field-test QKD over 428 km of deployed commercial fiber and two users are physically separated by about 300 km in a straight line. To this end, we explicitly measure the relevant properties of the deployed fiber and develop a carefully designed system with high stability. The secure key rate we achieved breaks the absolute key rate limit of repeaterless QKD. The result provides a new distance record for the field test of both TF-QKD and all types of fiber-based QKD systems. Our work bridges the gap of QKD between laboratory demonstrations and practical applications and paves the way for an intercity QKD network with measurement-device-independent security.Received 12 January 2021Accepted 10 May 2021DOI:https://doi.org/10.1103/PhysRevLett.126.250502© 2021 American Physical SocietyPhysics Subject Headings (PhySH)Research AreasOptical quantum information processingQuantum cryptographyQuantum opticsQuantum InformationAtomic, Molecular & Optical

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