论文标题
双场量子密钥分布而无需相位锁定
Twin-field quantum key distribution without phase locking
论文作者
论文摘要
双场量子键分布(TF-QKD)已成为长途纤维上实用量子通信的有前途的解决方案。但是,先前关于TF-QKD的演示需要相位锁定技术来连贯控制双灯场,不可避免地将系统与额外的光纤通道和外围硬件复杂化。在这里,我们提出并演示了一种恢复单光子干扰模式的方法,并实现tf-qkd \ emph {没有}相位锁定的方法。我们的方法将通信时间分离为参考帧和量子帧,其中参考帧是建立全局阶段参考的灵活方案。为此,我们基于快速傅立叶变换开发了一种量身定制的算法,以通过数据后处理有效地调和阶段参考。我们展示了从标准光纤上的短到长距离的无相锁定TF-QKD。在50公里的标准光纤下,我们产生的高秘密密钥速率(SKR)为1.27 mbit/s,而在504公里的标准光纤下,我们获得了中继器样的关键率缩放,SKR的SKR比无关无秘密的密钥容量高34倍。我们的工作为TF-QKD提供了可扩展且实用的解决方案,因此代表了朝着广泛应用迈出的重要一步。
Twin-field quantum key distribution (TF-QKD) has emerged as a promising solution for practical quantum communication over long-haul fiber. However, previous demonstrations on TF-QKD require the phase locking technique to coherently control the twin light fields, inevitably complicating the system with extra fiber channels and peripheral hardware. Here we propose and demonstrate an approach to recover the single-photon interference pattern and realize TF-QKD \emph{without} phase locking. Our approach separates the communication time into reference frames and quantum frames, where the reference frames serve as a flexible scheme for establishing the global phase reference. To do so, we develop a tailored algorithm based on fast Fourier transform to efficiently reconcile the phase reference via data post-processing. We demonstrate no-phase-locking TF-QKD from short to long distances over standard optical fibers. At 50-km standard fiber, we produce a high secret key rate (SKR) of 1.27 Mbit/s, while at 504-km standard fiber, we obtain the repeater-like key rate scaling with a SKR of 34 times higher than the repeaterless secret key capacity. Our work provides a scalable and practical solution to TF-QKD, thus representing an important step towards its wide applications.