论文标题
实验量子通信克服了损失限制,而无需全局相跟踪
Experimental Quantum Communication Overcomes the Rate-loss Limit without Global Phase Tracking
论文作者
论文摘要
点点量子键分布(QKD)的安全键率(SKR)从根本上受损失限制的限制。双场(TF)QKD的最新突破可以克服此限制并实现长距离量子通信,但是其实现需要复杂的全球相跟踪,并且需要强阶段参考,这不仅增加了噪声,还可以减少量子传输的占空比。在这里,我们通过实施创新但更简单的测量设备独立于QKD来解决这些缺点,并且重要的是,与TF-QKD相比,它比TF-QKD更高,从而通过异步一致的配对实现了中继器样的通信。在413和508 km的光纤上,我们实现了590.61和42.64位/s的有限尺寸SKR,分别是其相应的绝对速率限制的1.80和4.08倍。值得注意的是,在306公里处的SKR超过5 kbit/s,并满足了一次性的语音通信进行实时播音加密的比特率要求。我们的工作将带来经济有效的城市量子量子安全网络。
Secure key rate (SKR) of point-point quantum key distribution (QKD) is fundamentally bounded by the rate-loss limit. Recent breakthrough of twin-field (TF) QKD can overcome this limit and enables long distance quantum communication, but its implementation necessitates complex global phase tracking and requires strong phase references which not only add to noise but also reduce the duty cycle for quantum transmission. Here, we resolve these shortcomings, and importantly achieve even higher SKRs than TF-QKD, via implementing an innovative but simpler measurement-device-independent QKD which realizes repeater-like communication through asynchronous coincidence pairing. Over 413 and 508 km optical fibers, we achieve finite-size SKRs of 590.61 and 42.64 bit/s, which are respectively 1.80 and 4.08 times of their corresponding absolute rate limits. Significantly, the SKR at 306 km exceeds 5 kbit/s and meets the bitrate requirement for live one-time-pad encryption of voice communication. Our work will bring forward economical and efficient intercity quantum-secure networks.