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高速 3D 打印亚 7nm 表面粗糙度毫米级定制非球面成像透镜。

High-Speed 3D Printing of Millimeter-Size Customized Aspheric Imaging Lenses with Sub 7 nm Surface Roughness.

机构信息

Department of Mechanical Engineering, Northwestern University, Evanston, IL, 60208, USA.

Opticent, Inc., Evanston, IL, 60201, USA.

出版信息

Adv Mater. 2018 May;30(18):e1705683. doi: 10.1002/adma.201705683. Epub 2018 Mar 24.

Abstract

Advancements in three-dimensional (3D) printing technology have the potential to transform the manufacture of customized optical elements, which today relies heavily on time-consuming and costly polishing and grinding processes. However the inherent speed-accuracy trade-off seriously constrains the practical applications of 3D-printing technology in the optical realm. In addressing this issue, here, a new method featuring a significantly faster fabrication speed, at 24.54 mm h , without compromising the fabrication accuracy required to 3D-print customized optical components is reported. A high-speed 3D-printing process with subvoxel-scale precision (sub 5 µm) and deep subwavelength (sub 7 nm) surface roughness by employing the projection micro-stereolithography process and the synergistic effects from grayscale photopolymerization and the meniscus equilibrium post-curing methods is demonstrated. Fabricating a customized aspheric lens 5 mm in height and 3 mm in diameter is accomplished in four hours. The 3D-printed singlet aspheric lens demonstrates a maximal imaging resolution of 373.2 lp mm with low field distortion less than 0.13% across a 2 mm field of view. This lens is attached onto a cell phone camera and the colorful fine details of a sunset moth's wing and the spot on a weevil's elytra are captured. This work demonstrates the potential of this method to rapidly prototype optical components or systems based on 3D printing.

摘要

三维(3D)打印技术的进步有可能改变定制光学元件的制造方式,目前这种制造方式严重依赖于耗时且昂贵的抛光和打磨工艺。然而,固有速度-精度的权衡严重限制了 3D 打印技术在光学领域的实际应用。在解决这个问题时,这里提出了一种新的方法,其制造速度显著提高,达到 24.54mm/h,同时不影响制造定制光学元件所需的制造精度。通过采用投影微立体光刻工艺和灰度光聚合以及弯月面平衡后固化方法的协同作用,实现了具有亚像素级精度(小于 5µm)和深亚波长(小于 7nm)表面粗糙度的高速 3D 打印工艺。成功制造了一个 5 毫米高、3 毫米直径的定制非球面透镜,仅需四个小时。打印的单透镜非球面透镜在 2mm 视场范围内具有最大成像分辨率为 373.2lp/mm,场失真小于 0.13%。这个透镜被安装在手机相机上,可以捕捉到日落飞蛾翅膀的彩色精细细节和象鼻虫鞘翅上的斑点。这项工作展示了基于 3D 打印快速原型光学元件或系统的潜力。

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