Fluidic shaping of optical components

IF 2.8 Q2 MECHANICS
V. Frumkin, M. Bercovici
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引用次数: 6

Abstract

Abstract Current methods for fabricating lenses rely on mechanical processing of the lens or mould, such as grinding, machining and polishing. The complexity of these fabrication processes and the required specialized equipment prohibit rapid prototyping of optical components. This work presents a simple method, based on free-energy minimization of liquid volumes, which allows us to quickly shape curable liquids into a wide range of spherical and aspherical optical components, without the need for any mechanical processing. After the desired shape is obtained, the liquid can be cured to produce a solid object with nanometric surface quality. We provide a theoretical model that accurately predicts the shape of the optical components, and demonstrate rapid fabrication of all types of spherical lenses (convex, concave, meniscus), cylindrical lenses, bifocal lenses, toroidal lenses, doublet lenses and aspheric lenses. The method is inexpensive and can be implemented using a variety of curable liquids with different optical and mechanical properties. In addition, the method is scale invariant and can be used to produce even very large optical components, without a significant increase in fabrication time. We believe that the ability to easily and rapidly create optical components, without the need for complex and expensive infrastructure, will provide researchers with new affordable tools for fabricating and testing optical designs.
光学元件的流体成形
目前制造透镜的方法依赖于透镜或模具的机械加工,如磨削、加工和抛光。这些制造工艺的复杂性和所需的专用设备阻碍了光学元件的快速原型制作。这项工作提出了一种简单的方法,基于液体体积的自由能最小化,使我们能够快速将可固化的液体塑造成各种球形和非球面光学元件,而无需任何机械加工。在获得所需的形状后,可以固化液体以产生具有纳米表面质量的固体物体。我们提供了一个准确预测光学元件形状的理论模型,并演示了所有类型的球面透镜(凸、凹、半月板)、圆柱透镜、双焦点透镜、环面透镜、双焦点透镜和非球面透镜的快速制造。该方法价格低廉,并且可以使用具有不同光学和机械性能的各种可固化液体来实现。此外,该方法是尺度不变的,可以用于生产非常大的光学元件,而不会显著增加制造时间。我们相信,在不需要复杂和昂贵的基础设施的情况下,轻松快速地制造光学元件的能力,将为研究人员提供制造和测试光学设计的新的经济实惠的工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
2.40
自引率
0.00%
发文量
0
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