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THE IMPORTANCE OF TIME AND FREQUENCY REFERENCE IN QUANTUM ASTRONOMY AND QUANTUM COMMUNICATIONS

机译:时间和频率参考在量子天文学和量子通信中的重要性

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Very accurate and stable time tagging capabilities are fundamental for Quantum Astronomy and Quantum Key Distribution. The main task of Quantum Astronomy is to find particular signatures of different astrophysical emission mechanisms or scattering processes by measuring the statistics of the arrival time of each incoming photon. This line of research will be particularly important with future extremely large telescopes. On the other hand, Quantum Key Distribution (QKD) assures a secure cryptographic key sharing between optical transmitters and receivers through the synchronous exchange of quantum states (e.g., single polarized photons).Both technologies need to detect the arrival times each photon with very high temporal resolution in order to discriminate the signal photons from the background ones. In this article, we present the activities of our research group on Quantum Astronomy and Quantum Key Distribution, taking into account their very strict requirements.For Quantum Astronomy, we have developed an instrument called AquEYE capable of time-tagging each incoming single photon using as detectors four Single Photon Avalanche Diodes (SPAD). In this experiment, we need to maintain an absolute time scale reference with a maximum error phase less than 1 ns for measurements lasting more than 30 minutes. For the development phase of our instrument, we used an available rubidium oscillator disciplined by a GPS receiver. This system will supply the reference clock and trigger signal to our acquisition electronics, which are based on a time-to-digital converter. In the paper, we will present the more advanced solution we have under evaluation.As we are also working in the realization of a QKD prototype, we will present our study on time and frequency stability of the local oscillators of the electronics. For the moment, we are using two simple quartzes, but in the article we will show the results of several mathematical simulations. With them, we will analyze the performance tradeoffs in terms of the finalcryptographic key rate, through different synchronization techniques and frequency reference sources.
机译:非常精确和稳定的时间标记功能是量子天文学和量子密钥分配的基础。量子天文学的主要任务是通过测量每个入射光子到达时间的统计数据,找到不同天体发射机制或散射过程的特殊特征。对于未来的超大型望远镜,这一研究领域将尤其重要。另一方面,量子密钥分配(QKD)通过量子状态(例如单极化光子)的同步交换,确保了光发射器和接收器之间的安全密钥共享。 两种技术都需要以非常高的时间分辨率来检测每个光子的到达时间,以便将信号光子与背景光子区分开。在本文中,我们考虑了量子天文学和量子密钥分配的严格要求,介绍了我们研究小组的活动。 对于量子天文学,我们开发了一种称为AquEYE的仪器,该仪器能够使用四个单光子雪崩二极管(SPAD)作为检测器对每个入射的单光子进行时间标记。在此实验中,我们需要保持绝对时标基准,并且最大误差相位小于1 ns,以进行超过30分钟的测量。在仪器的开发阶段,我们使用了受GPS接收器约束的可用rub振荡器。该系统将为我们的基于时间数字转换器的采集电子设备提供参考时钟和触发信号。在本文中,我们将介绍我们正在评估的更高级的解决方案。 当我们也在努力实现QKD原型时,我们将介绍有关电子本地振荡器的时间和频率稳定性的研究。目前,我们正在使用两个简单的石英,但是在本文中,我们将显示几个数学模拟的结果。借助它们,我们将通过不同的同步技术和频率参考源,根据最终的加密密钥速率来分析性能折衷。

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