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可控视场和改进成像的人工复眼的制作。

Fabrication of Artificial Compound Eye with Controllable Field of View and Improved Imaging.

机构信息

State Key Laboratory for Manufacturing System Engineering , Xi'an Jiaotong University , Xi'an 710054 , China.

Shaanxi Key Laboratory of Intelligent Robots , Xi'an Jiaotong University , Xi'an 710049 , China.

出版信息

ACS Appl Mater Interfaces. 2020 Feb 19;12(7):8870-8878. doi: 10.1021/acsami.9b20740. Epub 2020 Feb 10.

Abstract

Many arthropods have compound eyes, which are made up of numerous separate visual units (microlenses) or ommatidia. These natural compound eyes have exceptional optical properties such as wide field of view (FOV), low aberration, and fast motion tracking capability. In this paper, a large-scale artificial compound eye (ACE) is fabricated efficiently using a combination of inkjet printing and air-assisted deformation processes. Both size and geometry of the microlens are controlled via superposed drops on the substrate. The simulation results show that the light intensity of the ACE follows a systematic distribution for tilted incident light, which represents a significant improvement, compared to planar distributed microlenses. We then manufacture ACEs with different heights and diameters, and their FOVs are compared with the theoretically predicted results. The measured FOV was 50°-140°. The acceptance angles for the different ACEs are determined, and their relationship with the ratio of height to radius (H/r) of the microlens is investigated in more detail. Furthermore, the imaging properties of the microlenses with different angles of incidences are studied, which suggest a FOV up to 140° and an acceptance angle of about 50°. The microlens captures images even at an angle of incidence of about 60°. The corresponding distortion in both the and directions is also investigated. Our findings provide guidelines for the development and fabrication of ACEs with large FOVs and acceptance angles, which may find applications in military, robotics, medical imaging, and astronomy.

摘要

许多节肢动物都有复眼,它由许多独立的视觉单元(微透镜)或小眼组成。这些天然复眼具有出色的光学特性,如宽视场(FOV)、低像差和快速运动跟踪能力。在本文中,通过喷墨打印和空气辅助变形工艺的组合,高效地制造出了大规模人工复眼(ACE)。微透镜的大小和几何形状通过在基底上叠加的液滴来控制。模拟结果表明,对于倾斜入射光,ACE 的光强遵循系统分布,与平面分布的微透镜相比,这是一个显著的改进。然后,我们制造了具有不同高度和直径的 ACE,并将它们的 FOV 与理论预测结果进行了比较。测量的 FOV 为 50°-140°。确定了不同 ACE 的接收角,并更详细地研究了它们与微透镜的高度与半径比(H/r)的关系。此外,还研究了不同入射角下微透镜的成像特性,表明 FOV 高达 140°,接收角约为 50°。即使在入射角约为 60°的情况下,微透镜也能捕捉到图像。还研究了在 和 方向上的相应失真。我们的发现为具有大 FOV 和大接收角的 ACE 的开发和制造提供了指导,这可能在军事、机器人技术、医学成像和天文学等领域有应用。

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