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首页> 外文期刊>Physical Review, A >Progress towards practical device-independent quantum key distribution with spontaneous parametric down-conversion sources, on-off photodetectors, and entanglement swapping
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Progress towards practical device-independent quantum key distribution with spontaneous parametric down-conversion sources, on-off photodetectors, and entanglement swapping

机译:通过自发的参数下转换源,开关式光电检测器和纠缠交换,实现与设备无关的实用量子密钥分配

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摘要

Device-independent quantum key distribution (DIQKD) guarantees unconditional security of a secret key without making assumptions about the internal workings of the devices used for distribution. It does so using the loophole-free violation of a Bell's inequality. The primary challenge in realizing DIQKD in practice is the detection loophole problem that is inherent to photonic tests of Bell' s inequalities over lossy channels. We revisit the proposal of Curty and Moroder [Phys.Rev.A 84, 010304(R) (2011)] to use a linear optics-based entanglement-swapping relay (ESR) to counter this problem. We consider realistic models for the entanglement sources and photodetectors: more precisely, (a) polarization-entangled states based on pulsed spontaneous parametric down-conversion sources with infinitely higher-order multiphoton components and multimode spectral structure, and (b) on-off photodetectors with nonunit efficiencies and nonzero dark-count probabilities. We show that the ESR-based scheme is robust against the above imperfections and enables positive key rates at distances much larger than what is possible otherwise.
机译:与设备无关的量子密钥分发(DIQKD)可确保密钥的无条件安全性,而无需假设用于分发的设备的内部工作情况。它是通过无漏洞地违反贝尔不等式来实现的。在实践中实现DIQKD的主要挑战是检测漏洞,这是有损通道上贝尔不等式的光子测试所固有的。我们重新审视Curty和Moroder的建议[Phys.Rev.A 84,010304(R)(2011)],使用基于线性光学的纠缠交换继电器(ESR)来解决此问题。我们考虑了纠缠源和光电探测器的现实模型:更准确地说,(a)基于具有无限高阶多光子分量和多模光谱结构的脉冲自发参数下转换源的偏振纠缠态,以及(b)开关光电探测器具有非单位效率和非零暗计数概率。我们表明,基于ESR的方案对于上述缺陷具有鲁棒性,并且在远大于其他情况下的距离处实现了正的密钥率。

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