Automatic turbulence mitigation for coherent free-space optical links using crystal-based phase conjugation and fiber-coupled data modulation

  • Huibin Zhou*
  • , Yuxiang Duan
  • , Hao Song
  • , Xinzhou Su
  • , Zhe Zhao
  • , Kaiheng Zou
  • , Haoqian Song
  • , Runzhou Zhang
  • , Robert W. Boyd
  • , Moshe Tur
  • , Alan E. Willner
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

10 Scopus citations

Abstract

There are various performance advantages when using temporal phase-based data encoding and coherent detection with a local oscillator (LO) in free-space optical (FSO) links. However, atmospheric turbulence can cause power coupling from the Gaussian mode of the data beam to higher-order modes, resulting in significantly degraded mixing efficiency between the data beam and a Gaussian LO. Photorefractive crystal-based self-pumped phase conjugation has been previously demonstrated to “automatically” mitigate turbulence with limited-rate free-space-coupled data modulation (e.g., <1 Mbit/s). Here, we demonstrate automatic turbulence mitigation in a 2-Gbit/s quadrature-phase-shift-keying (QPSK) coherent FSO link using degenerate four-wave-mixing (DFWM)-based phase conjugation and fiber-coupled data modulation. Specifically, we counter-propagate a Gaussian probe from the receiver (Rx) to the transmitter (Tx) through turbulence. At the Tx, we generate a Gaussian beam carrying QPSK data by a fiber-coupled phase modulator. Subsequently, we create a phase conjugate data beam through a photorefractive crystal-based DFWM involving the Gaussian data beam, the turbulence-distorted probe, and a spatially filtered Gaussian copy of the probe beam. Finally, the phase conjugate beam is transmitted back to the Rx for turbulence mitigation. Compared to a coherent FSO link without mitigation, our approach shows up to ∼14-dB higher LO-data mixing efficiency and achieves error vector magnitude (EVM) performance of <16% under various turbulence realizations.

Original languageEnglish
Pages (from-to)2194-2197
Number of pages4
JournalOptics Letters
Volume48
Issue number8
DOIs
StatePublished - 15 Apr 2023

Funding

FundersFunder number
Airbus Institute for Engineering Research
Office of Naval ResearchN00014-20-1-2558, N00014-16-1-2813
Air Force Office of Scientific ResearchFA9453-20-2-0001

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