论文标题

半导体激光器中的相位随机性:量子随机数的问题

Phase randomness in a semiconductor laser: Issue of quantum random-number generation

论文作者

Shakhovoy, Roman, Puplauskis, Marius, Sharoglazova, Violetta, Duplinskiy, Alexander, Sych, Denis, Maksimova, Elizaveta, Hydyrova, Selbi, Tumachek, Alexander, Mironov, Yury, Kovalyuk, Vadim, Prokhodtsov, Alexey, Goltsman, Grigory, Kurochkin, Yury

论文摘要

在众多量子应用中,尤其是在量子密钥分布系统和各种光学量子随机数发生器中,有增益开关激光器的需求。这种受欢迎程度的原因是增益开关激光脉冲之间的自然相随机化。这种随机化的想法已经变得如此熟悉,以至于大多数作者不考虑其使用的激光操作模式的功能。但是,以激光脉冲的高重复速率或在接近阈值的偏置电流下产生脉冲时,可能会违反相随机条件。本文介绍了用于估计增益切换激光器中相随机化程度的理论和实验方法。我们详细考虑了激光脉冲干扰的不同情况,并表明即使在干涉仪中存在经典相位漂移的情况下,如果激光器中的相扩散足够有效,则该干扰信号在本质上仍然保持量子。此外,我们制定了先前引入的量子还原因子与剩余的哈希引理之间的关系。使用这种关系,我们开发了一种在存在相关性的情况下估算干扰信号的量子噪声贡献的方法。最后,我们基于统计干扰条纹的分析引入了一种简单的实验方法,提供了有关激光脉冲干扰的概率特性的更详细信息。

Gain-switched lasers are in demand in numerous quantum applications, particularly, in systems of quantum key distribution and in various optical quantum random number generators. The reason for this popularity is natural phase randomization between gain-switched laser pulses. The idea of such randomization has become so familiar that most authors use it without regard to the features of the laser operation mode they use. However, at high repetition rates of laser pulses or when pulses are generated at a bias current close to the threshold, the phase randomization condition may be violated. This paper describes theoretical and experimental methods for estimating the degree of phase randomization in a gain-switched laser. We consider in detail different situations of laser pulse interference and show that the interference signal remains quantum in nature even in the presence of classical phase drift in the interferometer provided that the phase diffusion in a laser is efficient enough. Moreover, we formulate the relationship between the previously introduced quantum reduction factor and the leftover hash lemma. Using this relationship, we develop a method to estimate the quantum noise contribution to the interference signal in the presence of phase correlations. Finally, we introduce a simple experimental method based on the analysis of statistical interference fringes, providing more detailed information about the probabilistic properties of laser pulse interference.

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