论文标题

基于钻石缺陷中心的单个光子随机性

Single Photon Randomness based on a Defect Center in Diamond

论文作者

Chen, Xing, Greiner, Johannes, Wrachtrup, Jörg, Gerhardt, Ilja

论文摘要

量子随机数发生器的原型是单个光子,该光子会撞击光束分离器,然后由两个输出路径之一的单个光子检测器检测到。在检测之前,光子处于两个可能结果的量子机械叠加态,理想情况下是相等的幅度,直到其位置由测量确定为止。当单个光子检测器观察到两个输出模式时,可以将生成的点击解释为零,并获得原始的随机位流。在这里,我们基于钻石缺陷中心的单个光子实现了这样一个随机的位发生器。我们通过抗束式测量研究了缺陷中心的单个光子发射。这证明了提供的光子输入状态的“量子”,而随机的“决策”仍基于梁切开器开放端口的真空波动。讨论了技术局限性,例如强度波动,机械漂移和偏见。提出了许多抑制这种不必要效应的方法,并提出了先验熵估计。单个光子性质允许表征源的非古典性,并允许确定背景部分。由于NV中心的出色稳定性和光学特性,我们可以在环境条件下全面操作发电机。我们提出了实现的随机位生成器的真实24/7操作。

The prototype of a quantum random number generator is a single photon which impinges onto a beam splitter and is then detected by single photon detectors at one of the two output paths. Prior to detection, the photon is in a quantum mechanical superposition state of the two possible outcomes with - ideally - equal amplitudes until its position is determined by measurement. When the two output modes are observed by a single photon detector, the generated clicks can be interpreted as ones and zeros - and a raw random bit stream is obtained. Here we implement such a random bit generator based on single photons from a defect center in diamond. We investigate the single photon emission of the defect center by an anti-bunching measurement. This certifies the "quantumness" of the supplied photonic input state, while the random "decision" is still based on the vacuum fluctuations at the open port of the beam-splitter. Technical limitations, such as intensity fluctuations, mechanical drift, and bias are discussed. A number of ways to suppress such unwanted effects, and an a priori entropy estimation are presented. The single photon nature allows for a characterization of the non-classicality of the source, and allows to determine a background fraction. Due to the NV-center's superior stability and optical properties, we can operate the generator under ambient conditions around the clock. We present a true 24/7 operation of the implemented random bit generator.

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