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通过3D打印实现的动态可调光流多焦点微透镜阵列

Dynamically Tunable Optofluidic Multifocal Microlens Arrays by 3D Printing.

作者信息

Liang Li, Du Jin, Zhang Wang, Zhang Heyun, Wang Yifan, Liang Minhui, Liao Feng, Shi Jianping, Yang Joel K W, Zuo Zewen, Ai Ye

机构信息

Anhui Province Key Laboratory for Control and Applications of Optoelectronic Information Materials, School of Physics and Electronic Information, Key Laboratory of Functional Molecular Solids, Ministry of Education, Anhui Normal University, Wuhu 241003, China.

Pillar of Engineering Product Development, Singapore University of Technology and Design, Singapore 487372, Singapore.

出版信息

ACS Sens. 2025 Jun 27;10(6):4172-4183. doi: 10.1021/acssensors.5c00294. Epub 2025 Jun 4.

Abstract

Microlens arrays (MLAs) are key components in 3D integrated imaging optical systems, particularly the multifocal MLAs, which provide a new strategy to break through the depth-of-field limitations for 3D imaging. However, the focal lengths of most existing multifocal MLAs that are produced by solid materials are fixed, making it difficult to meet dynamic imaging requirements with a large depth of field. In this article, we innovatively propose dynamically tunable multifocal MLAs using fluid as the lens material, which is integrated into a three-dimensional optofluidic chip fabricated by two-photon 3D printing technology. The fluid multifocal MLAs are realized by filling a microcavity array with flow streams of a gradient refractive index (RI) distribution, which is formed through convection and diffusion between miscible liquids of different RIs. By changing the flow rates, the RI distribution in the microcavity array can be readily regulated; thus, the optical characteristics of the MLAs can be dynamically tuned. The modulation mechanism is revealed by combining theoretical analysis, numerical simulations, and experimental observations. Thanks to the excellent regulatability of fluids by optofluidics, the present fluid MLA offers a wide adjustment range for the focal length, numerical aperture, and focal spot intensity. Especially, it possesses the ability to rapidly switch between different focal planes (flat, concave, and multiple-curved focal planes). Furthermore, the imaging applications of fluid MLAs are demonstrated using fluorescent microparticles and fluorescence-stained cells as samples, which exhibit enhanced magnification and improved clarity. This adaptability supports dynamic sample observation, highlighting the great potential of optofluidic multifocal MLAs for applications requiring large depth-of-field imaging.

摘要

微透镜阵列(MLAs)是三维集成成像光学系统中的关键组件,特别是多焦点微透镜阵列,它为突破三维成像的景深限制提供了一种新策略。然而,大多数由固体材料制成的现有多焦点微透镜阵列的焦距是固定的,难以满足大景深的动态成像要求。在本文中,我们创新性地提出使用流体作为透镜材料的动态可调多焦点微透镜阵列,该阵列集成到通过双光子三维打印技术制造的三维光流体芯片中。通过用具有梯度折射率(RI)分布的流束填充微腔阵列来实现流体多焦点微透镜阵列,这种梯度折射率分布是通过不同RI的可混溶液体之间的对流和扩散形成的。通过改变流速,可以很容易地调节微腔阵列中的RI分布;因此,可以动态调节微透镜阵列的光学特性。通过结合理论分析、数值模拟和实验观察揭示了调制机制。由于光流体对流体具有出色的可调节性,当前的流体微透镜阵列在焦距、数值孔径和焦斑强度方面提供了广泛的调节范围。特别是,它具有在不同焦平面(平面、凹面和多曲线焦平面)之间快速切换的能力。此外,以荧光微颗粒和荧光染色细胞为样本展示了流体微透镜阵列的成像应用,这些应用表现出更高的放大倍数和更好的清晰度。这种适应性支持动态样本观察,突出了光流体多焦点微透镜阵列在需要大景深成像的应用中的巨大潜力。

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