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受生物启发的变焦复眼实现可变焦成像。

Bioinspired Zoom Compound Eyes Enable Variable-Focus Imaging.

机构信息

State Key Laboratory of Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, 2699 Qianjin Street, Changchun 130012, China.

State Key Laboratory of Precision Measurement Technology & Instruments, Department of Precision Instrument, Tsinghua University, Haidian District, Beijing 100084, China.

出版信息

ACS Appl Mater Interfaces. 2020 Mar 4;12(9):10107-10117. doi: 10.1021/acsami.9b21008. Epub 2020 Feb 24.

Abstract

Natural compound eyes provide the inspiration for developing artificial optical devices that feature a large field of view (FOV). However, the imaging ability of artificial compound eyes is generally based on the large number of ommatidia. The lack of a tunable imaging mechanism significantly limits the practical applications of artificial compound eyes, for instance, distinguishing targets at different distances. Herein, we reported zoom compound eyes that enable variable-focus imaging by integrating a deformable poly(dimethylsiloxane) (PDMS) microlens array (MLA) with a microfluidic chamber. The thin and soft PDMS MLA was fabricated by soft lithography using a hard template prepared by a combined technology of femtosecond laser processing and wet etching. As compared with other mechanical machining strategies, our combined technology features high flexibility, efficiency, and uniformity, as well as designable processing capability, since the size, distribution, and arrangement of the ommatidia can be well controlled during femtosecond laser processing. By tuning the volume of water injected into the chamber, the PDMS MLA can deform from a planar structure to a hemispherical shape, evolving into a tunable compound eye of variable FOV up to 180°. More importantly, the tunable chamber can functionalize as the main zoom lens for tunable imaging, which endows the compound eye with the additional capability of distinguishing targets at different distances. Its focal length can be turned from 3.03 mm to infinity with an angular resolution of 3.86 × 10 rad. This zoom compound eye combines the advantages of monocular eyes and compound eyes together, holding great promise for developing advanced micro-optical devices that enable large FOV and variable-focus imaging.

摘要

天然复眼为开发具有大视场(FOV)的人工光学器件提供了灵感。然而,人工复眼的成像能力通常基于大量小眼的存在。缺乏可调谐的成像机制极大地限制了人工复眼的实际应用,例如,区分不同距离的目标。在此,我们报道了一种变焦复眼,它通过将可变形的聚二甲基硅氧烷(PDMS)微透镜阵列(MLA)与微流控腔集成在一起,实现了可变焦成像。薄而软的 PDMS MLA 是通过软光刻技术使用飞秒激光加工和湿法刻蚀相结合技术制备的硬模板来制造的。与其他机械加工策略相比,我们的组合技术具有高灵活性、高效率和均匀性,以及可设计的加工能力,因为在飞秒激光加工过程中可以很好地控制小眼的尺寸、分布和排列。通过调节注入腔室的水量,可以使 PDMS MLA 从平面结构变形为半球形,演变成一个 FOV 高达 180°的可调谐复眼。更重要的是,可调谐腔室可以作为主变焦透镜进行可调谐成像,赋予复眼区分不同距离目标的额外能力。其焦距可以从 3.03mm 变为无穷大,角分辨率为 3.86×10 rad。这种变焦复眼结合了单眼和复眼的优点,为开发具有大 FOV 和可变焦成像功能的先进微光学器件提供了广阔的前景。

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