论文标题

量子非高斯证书的光子分辨检测器

Quantum non-Gaussianity certification of photon-number-resolving detectors

论文作者

Grygar, Jan, Hloušek, Josef, Fiurášek, Jaromír, Ježek, Miroslav

论文摘要

我们报告了光子数解析检测器的量子非高斯特征的直接实验认证。该认证协议基于对量子状态的现有量子非高斯性标准的适应,以量子测量。在我们的方法中,足以用真空状态和两个不同的热状态探测检测器来测试其量子非高斯性。实验证明了由十个单光雪崩光电二极管的空间多重阵列形成的检测器。我们确认了与$ m $折叠量相关的povm元素$ \hatπ_m$的量子非高斯性,最高$ m = 7 $。从第一原则中证明$ \hatπ_m$的量子非高斯性格的实验能力对于大$ m $限制了测量结果的低可能性,尤其是对于真空输入状态。我们发现,将独立的高斯背景噪声注入检测器可能会有所帮助,并且可能会减少可靠确认量子非高斯性所需的测量时间。此外,我们修改并实验验证了使用第三个热状态而不是真空加快整个测量的量子非高斯认证协议。我们的发现证明了存在基本非古典性质的实际表征和复杂光学量子检测器的基准测试的有效工具。

We report on direct experimental certification of the quantum non-Gaussian character of a photon-number resolving detector. The certification protocol is based on an adaptation of the existing quantum non-Gaussianity criteria for quantum states to quantum measurements. In our approach, it suffices to probe the detector with a vacuum state and two different thermal states to test its quantum non-Gaussianity. The certification is experimentally demonstrated for the detector formed by a spatially multiplexed array of ten single-photon avalanche photodiodes. We confirm the quantum non-Gaussianity of POVM elements $\hatΠ_m$ associated with the $m$-fold coincidence counts, up to $m=7$. The experimental ability to certify from the first principles the quantum non-Gaussian character of $\hatΠ_m$ is for large $m$ limited by low probability of the measurement outcomes, especially for vacuum input state. We find that the injection of independent Gaussian background noise into the detector can be helpful and may reduce the measurement time required for reliable confirmation of quantum non-Gaussianity. In addition, we modified and experimentally verified the quantum non-Gaussianity certification protocol employing a third thermal state instead of a vacuum to speed up the whole measurement. Our findings demonstrate the existence of efficient tools for the practical characterization of fundamental non-classical properties and benchmarking of complex optical quantum detectors.

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