用超导光子数分辨探测器表征非脉冲源的时间分束方法

Pasquale Ercolano;Ciro Bruscino;Daniela Salvoni;Chengjun Zhang;Mikkel Ejrnaes;Jia Huang;Hao Li;Lixing You;Loredana Parlato;Giovanni Piero Pepe
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引用次数: 0

摘要

光子数分辨探测器在许多领域都有应用,如量子光学、玻色子采样和荧光光谱。特别是,在量子通信中,重建输入光子分布对于检测光子数分裂攻击至关重要。本文从时间的角度讨论了基于超导纳米带的1550 nm波长光子数分辨探测器的工作配置。我们设置了一个时间仓,并通过时间-数字转换器获得了每个仓记录的脉冲数。我们研究了两种理论模型的预测,并将其与实验数据进行了比较,以便分析它们对双宽的影响,并将它们用于重建输入光子分布。我们将这种方法应用于连续波激光源,结果表明,即使光子发射率低到超导纳米带的暗计数率不可忽略,前者也可以用于表征非脉冲光源。
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Time Binning Method for Nonpulsed Sources Characterization With a Superconducting Photon Number Resolving Detector
Photon number resolving detectors find space in many fields, such as quantum optics, boson sampling, and fluorescence spectroscopy. In particular, the reconstruction of the input photon distribution is essential in quantum communications to detect photon-number-splitting attacks. In this work, we discuss the operation configurations of a photon number resolving detector based on superconducting nanostrips at a wavelength of 1550 nm from a temporal point of view. We set a time binning and acquired the number of recorded pulses per bin by means of a time-to-digital converter. We studied the predictions of two theoretical models and compared them to the experimental data in order to analyze their operation regimes depending on the binwidth and to employ them for the reconstruction of the input photon distribution. We applied this method to a continuous-wave laser source, showing that the former can be used for the characterization of nonpulsed light sources, even with a photon emission rate so low that the dark count rate of a superconducting nanostrip is not negligible.
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