Measurements of few-mode fiber photonic lanterns in emulated atmospheric conditions for a low earth orbit space to ground optical communication receiver application

S. Tedder, Bertram Floyd, Yousef K. Chahine, B. Croop, Brian E. Vyhnalek, C. Betters, S. Leon-Saval
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引用次数: 6

Abstract

Photonic lanterns are being evaluated as a component of a scalable photon counting real-time optical ground receiver for space-to-ground photon-starved communication applications. The function of the lantern as a component of a receiver is to efficiently couple and deliver light from the atmospherically distorted focal spot formed behind a telescope to multiple small-core fiber-coupled single-element super-conducting nanowire detectors. This architecture solution is being compared to a multimode fiber coupled to a multi-element detector array. This paper presents a set of measurements that begins this comparison. This first set of measurements are a comparison of the throughput coupling loss at emulated atmospheric conditions for the case of a 60 cm diameter telescope receiving light from a low earth orbit satellite. The atmospheric conditions are numerically simulated at a range of turbulence levels using a beam propagation method and are physically emulated with a spatial light modulator. The results show that for the same number of output legs as the single-mode fiber lantern, the few-mode fiber lantern increases the power throughput up to 3.92 dB at the worst emulated atmospheric conditions tested of D/r0=8.6. Furthermore, the coupling loss of the few-mode fiber lantern approaches the capability of a 30 micron graded index multimode fiber chosen for coupling to a 16 element detector array.
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低地球轨道空间对地光通信接收机模拟大气条件下的少模光纤光子灯测量
光子灯被评估为可扩展的光子计数实时光学地面接收器的组成部分,用于空间到地面的光子匮乏通信应用。作为接收器的一个组成部分,灯笼的功能是将望远镜后面形成的大气畸变焦斑的光有效地耦合并传递到多个小芯光纤耦合单元件超导纳米线探测器上。这种架构解决方案被比作多模光纤与多元件探测器阵列的耦合。本文提出了一组测量值来开始这种比较。这第一组测量是在模拟大气条件下,直径60厘米的望远镜接收来自近地轨道卫星的光的情况下的吞吐量耦合损失的比较。使用光束传播方法在一定湍流水平范围内对大气条件进行数值模拟,并使用空间光调制器进行物理模拟。结果表明:在输出支腿数与单模光纤灯相同的情况下,在D/r0=8.6的最坏模拟大气条件下,少模光纤灯的功率吞吐量最高可达3.92 dB。此外,低模光纤灯的耦合损耗接近于选择用于耦合16元探测器阵列的30微米渐变折射率多模光纤的能力。
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Free-space optical communication for CubeSats in low lunar orbit: LLO A novel ground-based receiver for EDRS Beam propagation through atmospheric turbulence using an altitude-dependent structure profile with non-uniformly distributed phase screens Measurements of few-mode fiber photonic lanterns in emulated atmospheric conditions for a low earth orbit space to ground optical communication receiver application
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