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基于编码轨道角动量(OAM)调制的深空与近地光通信。

Deep-space and near-Earth optical communications by coded orbital angular momentum (OAM) modulation.

作者信息

Djordjevic Ivan B

机构信息

Depart Electrical & Computer Eng, University of Arizona, 1230 E Speedway Blvd, Tucson, AZ 85721, USA.

出版信息

Opt Express. 2011 Jul 18;19(15):14277-89. doi: 10.1364/OE.19.014277.

Abstract

In order to achieve multi-gigabit transmission (projected for 2020) for the use in interplanetary communications, the usage of large number of time slots in pulse-position modulation (PPM), typically used in deep-space applications, is needed, which imposes stringent requirements on system design and implementation. As an alternative satisfying high-bandwidth demands of future interplanetary communications, while keeping the system cost and power consumption reasonably low, in this paper, we describe the use of orbital angular momentum (OAM) as an additional degree of freedom. The OAM is associated with azimuthal phase of the complex electric field. Because OAM eigenstates are orthogonal the can be used as basis functions for N-dimensional signaling. The OAM modulation and multiplexing can, therefore, be used, in combination with other degrees of freedom, to solve the high-bandwidth requirements of future deep-space and near-Earth optical communications. The main challenge for OAM deep-space communication represents the link between a spacecraft probe and the Earth station because in the presence of atmospheric turbulence the orthogonality between OAM states is no longer preserved. We will show that in combination with LDPC codes, the OAM-based modulation schemes can operate even under strong atmospheric turbulence regime. In addition, the spectral efficiency of proposed scheme is N2/logN times better than that of PPM.

摘要

为了实现用于星际通信的多千兆比特传输(预计在2020年实现),需要在脉冲位置调制(PPM)中使用大量时隙,PPM通常用于深空应用,这对系统设计和实现提出了严格要求。作为满足未来星际通信高带宽需求的一种替代方案,同时将系统成本和功耗保持在合理较低水平,在本文中,我们描述了使用轨道角动量(OAM)作为一个额外的自由度。OAM与复电场的方位角相位相关联。由于OAM本征态是正交的,它们可以用作N维信号的基函数。因此,OAM调制和复用可以与其他自由度结合使用,以解决未来深空和近地光通信的高带宽需求。OAM深空通信的主要挑战在于航天器探测器与地球站之间的链路,因为在存在大气湍流的情况下,OAM态之间的正交性不再保持。我们将表明,与低密度奇偶校验(LDPC)码相结合,基于OAM的调制方案即使在强大气湍流条件下也能运行。此外,所提出方案的频谱效率比PPM的频谱效率高N2/logN倍。

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