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Recent advances in high-capacity free-space optical and radio-frequency communications using orbital angular momentum multiplexing

机译:使用轨道角动量复用的大容量自由空间光和射频通信的最新进展

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摘要

There is a continuing growth in the demand for data bandwidth, and the multiplexing of multiple independent data streams has the potential to provide the needed data capacity. One technique uses the spatial domain of an electromagnetic (EM) wave, and space division multiplexing (SDM) has become increasingly important for increased transmission capacity and spectral efficiency of a communication system. A subset of SDM is mode division multiplexing (MDM), in which multiple orthogonal beams each on a different mode can be multiplexed. A potential modal basis set to achieve MDM is to use orbital angular momentum (OAM) of EM waves. In such a system, multiple OAM beams each carrying an independent data stream are multiplexed at the transmitter, propagate through a common medium and are demultiplexed at the receiver. As a result, the total capacity and spectral efficiency of the communication system can be multiplied by a factor equal to the number of transmitted OAM modes. Over the past few years, progress has been made in understanding the advantages and limitations of using multiplexed OAM beams for communication systems. In this review paper, we highlight recent advances in the use of OAM multiplexing for high-capacity free-space optical and millimetre-wave communications. We discuss different technical challenges (e.g. atmospheric turbulence and crosstalk) as well as potential techniques to mitigate such degrading effects.This article is part of the themed issue ‘Optical orbital angular momentum’.
机译:对数据带宽的需求持续增长,并且多个独立数据流的复用具有提供所需数据容量的潜力。一种技术使用电磁波(EM)的空间域,并且空分复用(SDM)对于提高通信系统的传输容量和频谱效率已变得越来越重要。 SDM的子集是模式分割多路复用(MDM),其中每个处于不同模式的多个正交波束都可以被多路复用。实现MDM的潜在模态基础是使用EM波的轨道角动量(OAM)。在这样的系统中,每个承载独立数据流的多个OAM波束在发射机处复用,通过公共介质传播,并在接收机处解复用。结果,通信系统的总容量和频谱效率可以乘以等于发送的OAM模式数量的因子。在过去的几年中,在理解将复用的OAM波束用于通信系统的优点和局限性方面取得了进展。在这篇评论文章中,我们重点介绍了在OAM多路复用用于大容量自由空间光通信和毫米波通信方面的最新进展。我们讨论了不同的技术挑战(例如,大气湍流和串扰),以及减轻这种退化影响的潜在技术。本文是“光学轨道角动量”主题的一部分。

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