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光学涡旋光束的相位记忆

Phase memory of optical vortex beams.

作者信息

Eshaghi Mahdi, Acevedo Cristian Hernando, Batarseh Mahed, Guzman-Sepulveda José Rafael, Dogariu Aristide

机构信息

CREOL, The College of Optics and Photonics, University of Central Florida, 4304 Scorpius St, Orlando, FL, 32816, USA.

Center for Research and Advanced Studies, National Polytechnic Institute, 66600, Apodaca, Nuevo Leon, Mexico.

出版信息

Sci Rep. 2022 Jun 21;12(1):10428. doi: 10.1038/s41598-022-14074-4.

Abstract

Optical vortex beams are under considerable scrutiny due to their demonstrated potential for applications ranging from quantum optics to optical communications and from material processing to particle trapping. However, upon interaction with inhomogeneous material systems, their deterministic properties are altered. The way these structured beams are affected by different levels of disturbances is critical for their uses. Here, for the first time, we quantify the degradation of perfect optical vortex beams after their interaction with localized random media. We developed an analytical model that (1) describes how the spatial correlation and the phase variance of disturbance affect the phase distribution across the vortex beams and (2) establishes the regimes of randomness for which the beams maintain the memory of their initial vorticity. Systematic numerical simulations and controlled experiments demonstrate the extent of this memory effect for beams with different vorticity indices.

摘要

光学涡旋光束因其在从量子光学到光通信、从材料加工到粒子捕获等广泛应用中所展现出的潜力而受到广泛关注。然而,当与非均匀材料系统相互作用时,它们的确定性特性会发生改变。这些结构化光束受不同程度干扰影响的方式对其应用至关重要。在此,我们首次量化了完美光学涡旋光束与局部随机介质相互作用后的退化情况。我们开发了一个分析模型,该模型(1)描述了干扰的空间相关性和相位方差如何影响涡旋光束的相位分布,以及(2)确定了光束保持其初始涡度记忆的随机性范围。系统的数值模拟和对照实验证明了不同涡度指数光束的这种记忆效应程度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4389/9213497/8bf4bd04b1fe/41598_2022_14074_Fig1_HTML.jpg

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