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Experimental study on the Gaussian-modulated coherent-state quantum key distribution over standard telecommunication fibers

机译:标准电信光纤上高斯调制相干态量子密钥分布的实验研究

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In this paper, we present a fully fiber-based one-way quantum-key-distribution (QKD) system implementing the Gaussian-modulated coherent-state (GMCS) protocol. The system employs a double Mach-Zehnder interferometer (MZI) configuration in which the weak quantum signal and the strong local oscillator (LO) go through the same fiber between Alice and Bob, and are separated into two paths inside Bob's terminal. To suppress the LO leakage into the signal path, which is an important contribution to the excess noise, we implemented a scheme combining polarization and frequency multiplexing, achieving an extinction ratio of 70 dB. To further minimize the system excess noise due to phase drift of the double MZI, we propose that, instead of employing phase feedback control, one simply let Alice remap her data by performing a rotation operation. We further present noise analysis both theoretically and experimentally. Our calculation shows that the combined polarization and frequency multiplexing scheme can achieve better stability in practice than the time-multiplexing scheme, because it allows one to use matched fiber lengths for the signal and the LO paths on both sides of the double MZI, greatly reducing the phase instability caused by unmatched fiber lengths. Our experimental noise analysis quantifies the three main contributions to the excess noise, which will be instructive to future studies of the GMCS QKD systems. Finally, we demonstrate, under the "realistic model" in which Eve cannot control the system within Bob's terminal, a secure key rate of 0.3bit/pulse over a 5km fiber link. This key rate is about two orders of magnitude higher than that of a practical Bennett-Brassard 1984 protocol QKD system.
机译:在本文中,我们提出了一种基于光纤的单向量子密钥分配(QKD)系统,该系统实现了高斯调制相干态(GMCS)协议。该系统采用双马赫曾德尔干涉仪(MZI)配置,其中弱量子信号和强本机振荡器(LO)通过Alice和Bob之间的同一根光纤,并在Bob终端内部分成两条路径。为了抑制LO泄漏到信号路径中(这是过量噪声的重要贡献),我们实施了一种将极化和频率复用相结合的方案,实现了70 dB的消光比。为了进一步最小化由于双MZI的相位漂移引起的系统多余噪声,我们建议,不采用相位反馈控制,只需让Alice通过执行旋转操作来重新映射其数据即可。我们还将在理论上和实验上进一步介绍噪声分析。我们的计算表明,极化和频率复用的组合方案在实践中比时分复用的方案具有更好的稳定性,因为它允许将匹配的光纤长度用于双MZI两侧的信号和LO路径,从而大大降低了光纤长度不匹配导致的相位不稳定性。我们的实验噪声分析量化了对多余噪声的三个主要贡献,这将对GMCS QKD系统的未来研究具有指导意义。最后,我们展示了在“现实模型”下,Eve无法控制Bob终端内的系统,在5公里的光纤链路上,安全密钥率为0.3bit /脉冲。这个关键速率比实际的Bennett-Brassard 1984协议QKD系统高大约两个数量级。

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