Mechanical Engineering Department, Northwestern University, Evanston, IL, 60208, USA.
Adv Mater. 2023 May;35(20):e2208365. doi: 10.1002/adma.202208365. Epub 2023 Jan 30.
This decade has witnessed the tremendous progress in miniaturizing optical imaging systems. Despite the advancements in 3D printing optical lenses at increasingly smaller dimensions, challenges remain in precisely manufacturing the dimensionally compatible optomechanical components and assembling them into a functional imaging system. To tackle this issue, the use of 3D printing to enable digitalized optomechanical component manufacturing, part-count-reduction design, and the inclusion of passive alignment features is reported here, all for the ease of system assembly. The key optomechanical components of a penny-sized accommodating optical microscope are 3D printed in 50 min at a significantly reduced unit cost near $4. By actuating a built-in voice-coil motor, its accommodating capability is validated to focus on specimens located at different distances, and a focus-stacking function is further utilized to greatly extend depth of field. The microscope can be readily customized and rapidly manufactured to respond to task-specific needs in form factor and optical characteristics.
这十年来,光学成像系统的微型化取得了巨大的进展。尽管 3D 打印技术在越来越小的尺寸上制造光学透镜方面取得了进步,但在精确制造尺寸兼容的光机械组件并将它们组装成一个功能成像系统方面仍然存在挑战。为了解决这个问题,本文报告了使用 3D 打印来实现光机械组件制造的数字化、减少零件数量的设计以及包括被动对准功能,所有这些都是为了便于系统组装。一个便士大小的自适应光学显微镜的关键光机械组件可以在 50 分钟内以显著降低的单位成本近 4 美元进行 3D 打印。通过驱动内置的音圈电机,验证了其自适应能力可以聚焦在不同距离的样本上,并且进一步利用焦点堆叠功能大大扩展了景深。该显微镜可以根据特定任务的需求进行定制和快速制造,以满足其在外形尺寸和光学特性方面的要求。