Long Yan, Song Zeyuan, Pan Mingliang, Tao Chunxian, Hong Ruijin, Dai Bo, Zhang Dawei
Opt Express. 2021 Apr 12;29(8):12763-12771. doi: 10.1364/OE.425333.
A variety of techniques have been proposed for fabricating high-density, high-numerical-aperture microlens arrays. However, a microlens array with a uniform focal length has a narrow depth of field, limiting the ability of depth perception. In this paper, we report on a fabrication method of multi-focus microlens arrays. The method for the preparation of the mold of the microlens array is based on 3D printing and microfluidic manipulation techniques. In the preparation of the mold, curved surfaces of the photo-curable resin with different curvatures are formed in the 3D printed microholes whose walls are inclined with different angles. The replicated microlens array consists of hundreds of lenslets with a uniform diameter of 500 µm and different focal lengths ranging from 635 µm to 970 µm. The multi-focus microlens array is capable of extending the depth of field for capturing clear images of objects at different distances ranging from 14.3 mm to 45.5 mm. The multi-focus microlens array has the potential to be used in a diversity of large-depth-of-field imaging and large-range depth perception applications.
人们已经提出了多种用于制造高密度、高数值孔径微透镜阵列的技术。然而,具有均匀焦距的微透镜阵列景深较窄,限制了深度感知能力。在本文中,我们报道了一种多焦点微透镜阵列的制造方法。微透镜阵列模具的制备方法基于3D打印和微流体操控技术。在制备模具时,在3D打印的微孔中形成具有不同曲率的光固化树脂曲面,这些微孔的壁以不同角度倾斜。复制的微透镜阵列由数百个小透镜组成,其直径均匀为500 µm,焦距不同,范围从635 µm到970 µm。多焦点微透镜阵列能够扩展景深,以捕获距离在14.3毫米至45.5毫米范围内不同物体的清晰图像。多焦点微透镜阵列有潜力用于多种大景深成像和大范围深度感知应用中。