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Scintillation of laser beams carrying orbital angular momentum propagating in a near-maritime environment

DOI:10.1016/j.optcom.2019.124836 期刊:Optics Communications 出版年份:2019 更新时间:2025-09-12 10:27:22
摘要: Laser beams carrying orbital angular momentum (OAM) were propagated in a near-maritime environment along an 890 meter link across the Severn River at the United States Naval Academy. The OAM beams were generated using green light ( ?? = 532 nm) and etched spiral phase plates with different topological charges. The light intensity fluctuations of Gaussian and beams carrying OAM with topological charges of 1, 6, and 8 were measured and the scintillation indices of each beam were compared. Additionally, atmospheric turbulence was measured using a co-aligned scintillometer along the 890 meter propagation path. During testing, a wide range of atmospheric conditions occurred and the refractive index structure parameter measurements ranged from 5 × 10?14 down to 5 × 10?15 m ???∕??. Our measurements of transmitted voltage in the radial intensity across the maritime link, and calculated scintillation index, for the Gaussian beam and laser beams carrying OAM indicate a weak reduction in scintillation index for increasing topological charge. To reduce the measurement uncertainty and improve upon statistical significance of our findings, additional testing is needed.
作者: Joe Wiedemann,Charles Nelson,Svetlana Avramov-Zamurovic
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Understanding and mitigating the interaction between laser light and random media, such as atmospheric turbulence, is a fundamental challenge in optical communications. This study focuses on exploring the radial intensity fluctuations, or scintillations, of a beam carrying OAM in comparison to a Gaussian beam when propagating in near-maritime atmosphere.

The study found a weak reduction in scintillation index for increasing topological charge in laser beams carrying OAM compared to Gaussian beams in a near-maritime environment. However, the statistical significance of this trend was inconclusive due to the variability in atmospheric conditions. Future research should include more extensive testing to confirm these findings and explore higher topological charges.

The study faced challenges due to the variation in atmospheric turbulence during testing, which complicated the analysis. The statistical significance of the findings was limited by the standard deviation of the scintillation index measurements. Additional testing is needed to confirm the observed weak trend in scintillation index reduction for higher topological charges.

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