Experimental characterization of entanglement characteristics in free-space quantum communication links

Vladimir V. Nikulin, Vijit Bedi, Ka. Soderberg, Paul Alsing, L. Wessing, P. Ricci, John W. Heinig, William F. Lipe
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Abstract

The primary focus of this paper is high-performance quantum communication systems that facilitate secure data transfer via free-space links. We consider an approach that uses correlated photon pairs generated in such a way that their polarizations are entangled and can be used to support quantum encryption protocols. However, when deployed in free space, these links can be affected by channel distortion, primarily via the spatial and temporal fields of the refractive index along the propagation path. In classical links, these fields alter the optical wave front characteristics; however, this mechanism does not directly apply to the quantum states utilized in single-photon or entangled photon protocols. Transmitting signals with quantum-based encryption creates a realm of problems, not related to wave front distortions, but rather to integrity of the quantum states after the signals propagate over free-space channels. We study these phenomena by implementing a laboratory testbed capable of creating a turbulent environment using atmospheric chambers developed by the AFRL. It is then used for experimental investigation of quantum entanglement after photon pairs are propagated both collinearly and via separate paths.
自由空间量子通信链路纠缠特性的实验表征
本文的主要焦点是通过自由空间链路促进安全数据传输的高性能量子通信系统。我们考虑了一种使用相关光子对的方法,这种方法产生的偏振是纠缠的,可以用来支持量子加密协议。然而,当在自由空间中部署时,这些链路可能受到信道失真的影响,主要是通过沿传播路径的折射率的空间和时间场。在经典链路中,这些场改变了光波前特性;然而,这种机制并不直接适用于单光子或纠缠光子协议中使用的量子态。用基于量子的加密技术传输信号会产生一系列问题,这些问题与波前失真无关,而是与信号在自由空间信道上传播后量子态的完整性有关。我们通过实施一个实验室试验台来研究这些现象,该试验台能够使用AFRL开发的大气室来创建湍流环境。然后将其用于光子对共线传播和通过不同路径传播后量子纠缠的实验研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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