论文标题

一个超导纳米线光子编号解决四季度检测器基于巨人的深空激光通信接收器原型

A superconducting nanowire photon number resolving four-quadrant detector-based Gigabit deep-space laser communication receiver prototype

论文作者

Hao, Hao, Zhao, Qing-Yuan, Huang, Yang-Hui, Deng, Jie, Wang, Hui, Guo, Jia-Wei, Chen, Shi, Ru, Sai-Ying, Liu, Zhen, Zhou, Yi-Jin, Wang, Shun-Hua, Wan, Chao, Liu, Hao, Li, Zhi-Jian, Wang, Hua-bing, Tu, Xue-Cou, Zhang, La-Bao, Jia, Xiao-Qing, Chen, Jian, Kang, Lin, Wu, Pei-Heng

论文摘要

深空探索需要从非常遥远的目标快速传输大量数据。激光通信是一项有前途的技术,由于光的差异从根本上讲较窄,因此可以比常规微波通信的数据速率快。这项研究证明了具有过度千兆数据速率,对强背景光子噪声的免疫力以及同时跟踪能力的光子敏感接收器原型。这些优点是从联合优化的超导纳米式单光子检测器(SNSPD)阵列继承的,该阵列设计为四季度结构,每个象限能够解决六个光子。系统检测效率达到72.7%,探测器效率为97.5%,总光子计数率为1.6 GCPS,该系统检测效率安装在自由空间耦合和低振动的低温恒温器中。此外,测试了脉冲位置调制(PPM)格式的通信性能。引入了一系列信号处理方法,以最大程度地提高正向误差校正(FEC)代码的性能。因此,与先前报道的结果相比,接收器的数据速率和更好的灵敏度高约为两倍(800 Mbps时1.76个光子/位,为800 Mbps和3.40个光子/位)(1.2 Gbps)(3.18 photon/lunar lunar Laser Communication的622 Mbps时3.18 hoton/lit)。此外,在深空场景中,证明了强烈的背景噪声和同时跟踪能力的通信,旨在针对日光操作的挑战和准确跟踪Dim Beacon Light的挑战。

Deep space explorations require transferring huge amounts of data quickly from very distant targets. Laser communication is a promising technology that can offer a data rate of magnitude faster than conventional microwave communication due to the fundamentally narrow divergence of light. This study demonstrated a photon-sensitive receiver prototype with over Gigabit data rate, immunity to strong background photon noise, and simultaneous tracking ability. The advantages are inherited from a joint-optimized superconducting nanowire single-photon detector (SNSPD) array, designed into a four-quadrant structure with each quadrant capable of resolving six photons. Installed in a free-space coupled and low-vibration cryostat, the system detection efficiency reached 72.7%, the detector efficiency was 97.5%, and the total photon counting rate was 1.6 Gcps. Additionally, communication performance was tested for pulse position modulation (PPM) format. A series of signal processing methods were introduced to maximize the performance of the forward error correction (FEC) code. Consequently, the receiver exhibits a faster data rate and better sensitivity by about twofold (1.76 photons/bit at 800 Mbps and 3.40 photons/bit at 1.2 Gbps) compared to previously reported results (3.18 photon/bit at 622 Mbps for the Lunar Laser Communication Demonstration). Furthermore, communications in strong background noise and with simultaneous tracking ability were demonstrated aimed at the challenges of daylight operation and accurate tracking of dim beacon light in deep space scenarios.

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