Adaptive optics compensation of multiple orbital angular momentum beams propagating through emulated atmospheric turbulence

Yongxiong Ren(University of Southern California), Guodong Xie(University of Southern California), Hao Huang(University of Southern California), Changjing Bao(University of Southern California), Yan Yan(University of Southern California), Nisar Ahmed(University of Southern California), Martin P. J. Lavery(University of Glasgow), Baris I. Erkmen(Jet Propulsion Laboratory), S. Dolinar(Jet Propulsion Laboratory), Moshe Tur(Tel Aviv University), Mark A. Neifeld(University of Arizona), Miles J. Padgett(University of Glasgow), Robert W. Boyd(University of Rochester), Jeffrey H. Shapiro(Massachusetts Institute of Technology), Alan E. Willner(University of Southern California)
Optics Letters
May 1, 2014
Cited by 178

Abstract

We propose an adaptive optics compensation scheme to simultaneously compensate multiple orbital angular momentum (OAM) beams propagating through atmospheric turbulence. A Gaussian beam on one polarization is used to probe the turbulence-induced wavefront distortions and derive the correction pattern for compensating the OAM beams on the orthogonal polarization. By using this scheme, we experimentally demonstrate simultaneous compensation of multiple OAM beams, each carrying a 100 Gbit/s data channel through emulated atmospheric turbulence. The experimental results indicate that the correction pattern obtained from the Gaussian probe beam could be used to simultaneously compensate multiple turbulence-distorted OAM beams with different orders. It is found that the turbulence-induced crosstalk effects on neighboring modes are efficiently reduced by 12.5 dB, and the system power penalty is improved by 11 dB after compensation.


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