论文标题
部分可观测时空混沌系统的无模型预测
Characterization of noise regimes in Mid-IR free-space optical communication based on quantum cascade lasers
论文作者
论文摘要
量子级联激光器(QCL)的最新发展是部署在中红外(MID-IR)波长范围内部署新的自由空间光学(FSO)通信系统的最大机会之一。与利用电信范围的更常见的FSO系统相比,在MID-IR系统中使用的较大的波长在不良大气条件下提供了出色的益处,因为降低的散射速率会严重抑制对雨水,灰尘,灰尘,雾和雾兹的存在对FSO连接长度的有害影响。在这项工作中,我们使用在\ si {4.7} {\ micro M}上运行的新型FSO测试床,对基于QCL的现实FSO MID-IR系统中可能发生的噪声状态提供了详细的实验分析。我们的分析揭示了两个不同的噪声区域的存在,这些区域对应于不同的现实通道衰减条件,这些条件在我们的设置中得到了精确控制。为了将我们的结果与实际室外配置联系起来,我们将实验数据与大气通道损失模型的预测相结合,发现在低可见性条件下,可以实现无错误的通信,以达到高达8〜km的有效距离。我们对噪声制度的分析可能与基于MID-IR QCL来源的新型,远程FSO通信系统的开发具有关键相关性
The recent development of Quantum Cascade Lasers (QCLs) represents one of the biggest opportunities for the deployment of a new class of Free Space Optical (FSO) communication systems working in the mid-infrared (Mid-IR) wavelength range. As compared to more common FSO systems exploiting the telecom range, the larger wavelength employed in Mid-IR systems delivers exceptional benefits in case of adverse atmospheric conditions, as the reduced scattering rate strongly suppresses detrimental effects on the FSO link length given by the presence of rain, dust, fog and haze. In this work, we use a novel FSO testbed operating at \SI{4.7}{\micro m}, to provide a detailed experimental analysis of noise regimes that could occur in realistic FSO Mid-IR systems based on QCLs. Our analysis reveals the existence of two distinct noise regions, corresponding to different realistic channel attenuation conditions, which are precisely controlled in our setup. To relate our results with real outdoor configurations, we combine experimental data with predictions of an atmospheric channel loss model, finding that error-free communication could be attained for effective distances up to 8~km in low visibility conditions of 1 km. Our analysis of noise regimes may have a key relevance for the development of novel, long-range FSO communication systems based on Mid-IR QCL sources