Orbital Angular Momentum-based Space Division Multiplexing for High-capacity Underwater Optical Communications

Пространственное мультиплексирование на основе орбитального углового момента для высокоемкостной подводной оптической связи
Yongxiong Ren, Long Li, Zhe Wang, Seyedeh Mahsa Kamali, Ehsan Arbabi, Amir Arbabi, Zhe Zhao, Guodong Xie, Yinwen Cao, Nisar Ahmed, Yan Yan, Cong Liu, Asher J. Willner, Solyman Ashrafi, Moshe Tur, Andrei Faraon, Alan E. Willner
2016-09-12

inter-channel crosstalkorbital angular momentumspace division multiplexingthermal gradient turbulenceunderwater optical communications
To increase system capacity of underwater optical communications, we employ the spatial domain to simultaneously transmit multiple orthogonal spatial beams, each carrying an independent data channel. In this paper, we show up to a 40-Gbit/s link by multiplexing and transmitting four green orbital angular momentum (OAM) beams through a single aperture. Moreover, we investigate the degrading effects of scattering/turbidity, water current, and thermal gradient-induced turbulence, and we find that thermal gradients cause the most distortions and turbidity causes the most loss. We show systems results using two different data generation techniques, one at 1064 nm for 10-Gbit/s/beam and one at 520 nm for 1-Gbit/s/beam; we use both techniques since present data-modulation technologies are faster for infrared (IR) than for green. For the 40-Gbit/s link, data is modulated in the IR, and OAM imprinting is performed in the green using a specially-designed metasurface phase mask. For the 4-Gbit/s link, a green laser diode is directly modulated. Finally, we show that inter-channel crosstalk induced by thermal gradients can be mitigated using multi-channel equalisation processing.
1
Multi-channel equalization processing mitigates inter-channel crosstalk induced by thermal gradients.
2
The 40-Gbit/s system uses infrared data modulation with green OAM imprinting via a specially designed metasurface phase mask.
3
The study demonstrates up to a 40-Gbit/s underwater optical link by multiplexing four orthogonal green OAM beams through a single aperture.
4
Thermal gradients produce the greatest beam distortions, whereas water turbidity causes the largest transmission losses among investigated impairments.
5
Two data-generation approaches are demonstrated: 1064-nm infrared modulation at 10 Gbit/s per beam and 520-nm green modulation at 1 Gbit/s per beam.

Multiplexed green orbital angular momentum (OAM) beams propagating through underwater optical communication links

High-capacity spatial-division multiplexing performance and degradation mechanisms under scattering/turbidity, water currents, and thermal-gradient-induced turbulence, including thermal-gradient crosstalk mitigation

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2016-09-12
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Authors
Yongxiong Ren
Long Li
Zhe Wang
Seyedeh Mahsa Kamali
Ehsan Arbabi
Amir Arbabi
Zhe Zhao
Guodong Xie
Yinwen Cao
Nisar Ahmed
Yan Yan
Cong Liu
Asher J. Willner
Solyman Ashrafi
Moshe Tur
Andrei Faraon
Alan E. Willner
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