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Turbulence-resilient pilot-assisted self-coherent free-space optical communications using automatic optoelectronic mixing of many modes

Authors :
Alan E. Willner
Zhe Zhao
Karapet Manukyan
Xinzhou Su
Nanzhe Hu
Kaiheng Zou
Haoqian Song
Moshe Tur
Runzhou Zhang
Brittany Lynn
Amir Minoofar
Cong Liu
Huibin Zhou
Hao Song
Robert W. Boyd
Kai Pang
Yiyu Zhou
Ahmed Almaiman
Source :
Nature Photonics. 15:743-750
Publication Year :
2021
Publisher :
Springer Science and Business Media LLC, 2021.

Abstract

In free-space optical communications that use both amplitude and phase data modulation (for example, in quadrature amplitude modulation (QAM)), the data are typically recovered by mixing a Gaussian local oscillator with a received Gaussian data beam. However, atmospheric turbulence can induce power coupling from the transmitted Gaussian mode to higher-order modes, resulting in a significantly degraded mixing efficiency and system performance. Here, we use a pilot-assisted self-coherent detection approach to overcome this problem. Specifically, we transmit both a Gaussian data beam and a frequency-offset Gaussian pilot tone beam such that both beams experience similar turbulence and modal coupling. Subsequently, a photodetector mixes all corresponding pairs of the beams’ modes. During mixing, a conjugate of the turbulence-induced modal coupling is generated and compensates the modal coupling experienced by the data, and thus the corresponding modes of the pilot and data mix efficiently. We demonstrate a 12 Gbit s−1 16-QAM polarization-multiplexed free-space optical link that is resistant to turbulence. A transmission scheme for free-space optical communications is shown to be highly robust against turbulence.

Details

ISSN :
17494893 and 17494885
Volume :
15
Database :
OpenAIRE
Journal :
Nature Photonics
Accession number :
edsair.doi...........3f3b07e81a74b8a8693f340c0ba237dc
Full Text :
https://doi.org/10.1038/s41566-021-00877-w