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Higher-dimensional orbital-angular-momentum-based quantum key distribution with mutually unbiased bases

机译:具有互不偏基的高维轨道角动量量子密钥分布

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摘要

We present an experimental study of higher-dimensional quantum key distribution protocols based on mutually unbiased bases, implemented by means of photons carrying orbital angular momentum. We perform (d+1) mutually unbiased measurements in a classically simulated prepare-and-measure scheme and on a pair of entangled photons for dimensions ranging from d=2 to 5. In our analysis, we pay attention to the detection efficiency and photon pair creation probability. As security measures, we determine from experimental data the average error rate, the mutual information shared between the sender and receiver, and the secret key generation rate per photon. We demonstrate that increasing the dimension leads to an increased information capacity as well as higher key generation rates per photon. However, we find that the benefit of increasing the dimension is limited by practical implementation considerations, which in our case results in deleterious effects observed beyond a dimension of d=4.
机译:我们目前对基于相互无偏基的高维量子密钥分配协议进行实验研究,该协议通过携带轨道角动量的光子来实现。我们在经典模拟的准备和测量方案中对一对纠缠的光子(尺寸为d = 2到5)执行(d + 1)个相互无偏的测量。在我们的分析中,我们关注检测效率和光子对创建概率。作为安全措施,我们从实验数据中确定平均错误率,发送方和接收方之间共享的互信息以及每个光子的密钥生成率。我们证明,增加尺寸会导致信息容量的增加以及每个光子密钥生成率的提高。但是,我们发现,增加尺寸的好处受到实际实施考虑的限制,在我们的情况下,这会导致观察到的有害影响超过尺寸d = 4。

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