Correcting astigmatism and ellipticity in Gaussian beams using a cylindrical lens pair with tunable focal lengths
Soroush Khoubyarian, Anastasiia Mashko, Alexandre Cooper

TL;DR
This paper presents a simple, tunable cylindrical lens pair method to correct astigmatism and ellipticity in Gaussian laser beams, offering a flexible, cost-effective alternative to existing passive and active correction techniques.
Contribution
It introduces a novel, adjustable cylindrical lens pair setup that effectively converts elliptical, astigmatic beams into circular Gaussian beams without needing precise lens matching.
Findings
The method successfully circularizes laser beams in experiments.
It is robust against typical experimental imperfections.
The setup is compact and adaptable for various applications.
Abstract
Correcting astigmatism and ellipticity in laser beams is critical for improving performance in many applications like microscopy, atomic physics, quantum information processing, and advanced manufacturing. Passive correction methods based on cylindrical lens telescopes require choosing lenses with precise focal lengths, effectively limiting the range of tunability when using standard catalog optics. Active solutions based on diffractive optical elements can achieve superior performance, but they are bulky, expensive, and suffer from finite diffraction efficiency and added complexity. Here, we introduce a simple method to convert astigmatic elliptical beams into circular Gaussian beams without astigmatism. Our method comprises three cylindrical lenses. The first lens focuses the beam along its major axis to create a plane where the intensity profile is radially symmetric. The second and…
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Taxonomy
TopicsAdvanced optical system design · Orbital Angular Momentum in Optics · Electrowetting and Microfluidic Technologies
