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Proof-of-principle experimental demonstration of twin-field quantum key distribution over optical channels with asymmetric losses

机译:使用不对称损耗的光学通道的双场量子密钥分布的原则上的原理实验证明

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Twin-field (TF) quantum key distribution (QKD) is highly attractive because it can beat the fundamental limit of secret key rate for point-to-point QKD without quantum repeaters. Many theoretical and experimental studies have shown the superiority of TFQKD in long-distance communication. All previous experimental implementations of TFQKD have been done over optical channels with symmetric losses. But in reality, especially in a network setting, the distances between users and the middle node could be very different. In this paper, we perform a proof-of-principle experimental demonstration of TFQKD over optical channels with asymmetric losses. We compare two compensation strategies, that are (1) applying asymmetric signal intensities and (2) adding extra losses, and verify that strategy (1) provides much better key rate. Moreover, the higher the loss, the more key rate enhancement it can achieve. By applying asymmetric signal intensities, TFQKD with asymmetric channel losses not only surpasses the fundamental limit of key rate of point-to-point QKD for 50 dB overall loss, but also has key rate as high as 2.918 10 6 for 56 dB overall loss. Whereas no keys are obtained with strategy (2) for 56 dB loss. The increased key rate and enlarged distance coverage of TFQKD with asymmetric channel losses guarantee its superiority in long-distance quantum networks.
机译:双场(TF)量子密钥分布(QKD)非常有吸引力,因为它可以击败没有量子中继器的点对点QKD的秘密密钥率的基本限制。许多理论和实验研究表明TFQKD在远程通信中的优势。在具有对称损耗的光学通道上完成了先前的TFQKD实验实施。但实际上,特别是在网络设置中,用户和中间节点之间的距离可能非常不同。在本文中,我们在具有不对称损失的光学通道上执行TFQKD的原则上的原则上实验证明。我们比较两个补偿策略,即(1)应用不对称信号强度和(2)增加额外损失,并验证策略(1)提供更好的关键率。而且,损失越高,它可以实现的次数增强越高。通过应用不对称信号强度,具有不对称信道损耗的TFQKD不仅超越了点对点QKD的键速率的基本限制,对于50 dB的总体损失,也具有高达2.918 10 6的钥匙率,对于56 dB总体损失。然而,没有用策略(2)获得键的键,有56 dB损失。具有非对称信道损耗的TFQKD的钥匙率和扩大距离覆盖量能够保证其在长距离量子网络中的优势。

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