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基于同一焦平面上多种类型和级次的同时像散变换简化涡旋拓扑电荷的实验检测

Simplifying the Experimental Detection of the Vortex Topological Charge Based on the Simultaneous Astigmatic Transformation of Several Types and Levels in the Same Focal Plane.

作者信息

Khorin Pavel A, Khonina Svetlana N, Porfirev Alexey P, Kazanskiy Nikolay L

机构信息

Department of Technical Cybernetics, Samara National Research University, 443086 Samara, Russia.

Image Processing Systems Institute of RAS-Branch of the FSRC "Crystallography and Photonics" RAS, 443001 Samara, Russia.

出版信息

Sensors (Basel). 2022 Sep 28;22(19):7365. doi: 10.3390/s22197365.

Abstract

It is known that the astigmatic transformation can be used to analyze the topological charge of a vortex beam, which can be implemented by using various optical methods. In this case, in order to form an astigmatic beam pattern suitable for the clear detection of a topological charge, an optical adjustment is often required (changing the lens tilt and/or the detection distance). In this article, we propose to use multi-channel diffractive optical elements (DOEs) for the simultaneous implementation of the astigmatic transformations of various types and levels. Such multi-channel DOEs make it possible to insert several types of astigmatic aberrations of different levels into the analyzed vortex beam simultaneously, and to form a set of aberration-transformed beam patterns in different diffraction orders in one detection plane. The proposed approach greatly simplifies the analysis of the characteristics of a vortex beam based on measurements in the single plane without additional adjustments. In this article, a detailed study of the effect of various types of astigmatic aberrations based on a numerical simulation and experiments was carried out, which confirmed the effectiveness of the proposed approach.

摘要

众所周知,像散变换可用于分析涡旋光束的拓扑电荷,这可以通过各种光学方法来实现。在这种情况下,为了形成适合清晰检测拓扑电荷的像散光束图案,通常需要进行光学调整(改变透镜倾斜度和/或检测距离)。在本文中,我们建议使用多通道衍射光学元件(DOE)来同时实现各种类型和级别的像散变换。这种多通道DOE能够将几种不同级别的像散像差同时插入到被分析的涡旋光束中,并在一个检测平面内以不同的衍射级形成一组像差变换后的光束图案。所提出的方法极大地简化了基于在单个平面内测量的涡旋光束特性分析,而无需额外调整。在本文中,基于数值模拟和实验对各种类型像散像差的影响进行了详细研究,证实了所提出方法的有效性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/48f5/9572889/7f1133825f7c/sensors-22-07365-g001.jpg

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