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3D Printing Customized Optical Lens in Minutes

机译:几分钟内即可完成3D打印定制光学镜片

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摘要

Synergizing grayscale photopolymerization and meniscus coating processes, rapid 3D printing of optical lenses is reported previously using projection microstereolithography (P mu SL) process. Despite its 14 000-fold-improved printing speed over the femtosecond 3D printing process, P mu SL still consumes significant amount of the fabrication time for precise recoating 5 mu m thick fresh resin layers. At the reported speed of 24.54 mm(3) h(-1), 3D printing of the millimeter-size lenses still takes hours. To further improve the printing speed, the microcontinuous liquid interface production process is implemented to eliminate the time-consuming resin recoating step. However, the micrometer-size pores in the Teflon membrane needed for oxygen transportation are found to completely spoil the surface smoothness. The use of polydimethylsiloxane thin film possessing much refined nanoscopic porosities as the functional substitute of Teflon membrane is reported to significantly reduce the surface roughness to 13.7 nm. 3D printing of 3 mm high aspherical lens in approximate to 2 min at a 200-fold-improved speed at 4.85 x 10(3) mm(3) h(-1) is demonstrated. The 3D printed aspherical lens has the demonstrated imaging resolution of 3.10 mu m. This work represents a significant step in tackling the speed-accuracy trade-off of 3D printing process and thus enables rapid fabrication of customized optical components.
机译:协同灰度光聚合和弯月面涂层工艺,光学透镜的快速3D打印先前已报道使用投影微立体光刻(P mu SL)工艺。尽管其在飞秒3D打印过程中的打印速度提高了14000倍,但P mu SL仍然需要大量的制造时间才能精确地重新涂覆5μm厚的新鲜树脂层。在报告的24.54 mm(3)h(-1)速度下,毫米级镜头的3D打印仍然需要数小时。为了进一步提高印刷速度,实施了微连续液体界面生产工艺,以消除耗时的树脂重涂步骤。然而,发现氧气输送所需的特氟龙膜中的微米级孔完全破坏了表面的光滑度。据报道,使用具有许多精细的纳米孔隙率的聚二甲基硅氧烷薄膜作为特氟龙膜的功能替代品,可将表面粗糙度显着降低至13.7 nm。演示了3 mm高非球面镜片的3D打印,在大约2分钟的时间内,以4.85 x 10(3)mm(3)h(-1)的速度提高了200倍。 3D打印非球面透镜的成像分辨率为3.10微米。这项工作代表着解决3D打印过程的速度准确性折衷方案中的重要一步,因此可以快速制造定制的光学组件。

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