使用光学相干层析成像系统和波前传感器对小型化透镜进行快速、半自动的几何和功能表征

Alfredo Velazquez Iturbide, Robert Schmitt
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引用次数: 0

摘要

小型化透镜越来越多地应用于各种应用,包括医疗设备、光通信和成像系统。这些透镜的特性是至关重要的,因为它们的性能高度依赖于它们的几何和功能特性。然而,这些镜头的小尺寸加上所需的短测量时间,对传统的测量技术提出了重大挑战。光学相干层析成像(OCT)和Shack Hartmann波前传感器(SHWS)的最新进展,在集成适当的硬件、软件和算法时,可以快速、半自动地对小型化透镜进行几何和功能表征。OCT是一种非侵入性成像技术,可以提供透镜的高分辨率横截面图像,允许精确测量其中心厚度,曲率和两个表面的其他几何参数。此外,SHWS可以用来测量透镜的透射波前误差,这直接关系到透镜的光学性能。在本文中,我们展示了使用OCT和SHWS来表征直径和厚度为几毫米的球形和非球形聚合物和玻璃透镜。我们的研究结果表明,OCT能够准确测量透镜的中心厚度和表面轮廓,而SHWS提供了它们的波前像差信息。通过结合这两种技术,我们能够获得透镜几何和功能特性的全面表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fast, semi-automated geometric and functional characterization of miniaturized lenses using optical coherence tomography-based systems and wavefront sensors
Miniaturized lenses are increasingly utilized in a range of applications, including medical devices, optical communication, and imaging systems. The characterization of these lenses is crucial as their performance is highly dependent on their geometrical and functional properties. However, the small size of these lenses coupled with the required short measurement times, presents a significant challenge for conventional measurement techniques. Recent advances in optical coherence tomography (OCT) and Shack Hartmann wavefront sensors (SHWS) have enabled rapid, semi-automated geometric and functional characterization of miniaturized lenses when appropriate hardware, software, and algorithms are integrated. OCT is a non-invasive imaging technique that can provide high-resolution cross-sectional images of the lens, allowing the accurate measurement of its central thickness, curvature, and other geometric parameters of both surfaces. Moreover, SHWS can be used to measure the transmitted wavefront error of the lens, which is directly related to its optical performance. In this paper, we demonstrate the use of OCT and SHWS to characterize polymer and glass lenses with diameters and thicknesses of a few millimeters with spherical and aspherical shapes. Our results show that OCT is capable of accurately measuring the central thickness and surface profile of the lenses, while SHWS provides information on their wavefront aberrations. By combining these two techniques, we were able to obtain a com-prehensive characterization of the lenses' geometrical and functional properties.
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