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一款即插即用、可扩展焦点的相位掩模简化了用于经济型即时诊断的显微镜和微流控成像系统。

A Drop-in, Focus-Extending Phase Mask Simplifies Microscopic and Microfluidic Imaging Systems for Cost-Effective Point-of-Care Diagnostics.

机构信息

Key Laboratory of Precision Scientific Instrumentation of Anhui Higher Education Institutes, Department of Precision Machinery and Precision Instrumentation, University of Science and Technology of China, Hefei, Anhui 230027, China.

Suzhou Institute for Advanced Research, University of Science and Technology of China, Suzhou, Jiangsu 215123, China.

出版信息

Anal Chem. 2022 Aug 9;94(31):11000-11007. doi: 10.1021/acs.analchem.2c01421. Epub 2022 Jul 27.

Abstract

Microscopic imaging and imaging flow cytometry have wide potential in point-of-care assays; however, their narrow depth of focus necessitates precise mechanical or fluidic focus control of a sample in order to acquire high-quality images that can be used for downstream analysis, increasing the cost and complexity of the imaging system. This complexity represents a barrier to miniaturization and translation of point-of-care assays based on microscopic imaging or imaging flow cytometry. To address this challenge, we present a simple drop-in phase mask with a physics-informed, circularly symmetric asphere phase profile that extends the depth of focus by >5-fold while largely preserving the image quality compared to other depth extending methods. We show that such a focus-extended system overcomes manufacturing tolerances in low-cost sample chambers, enlarges the useable field-of-view of low-cost objectives, and permits increased throughput and precision in flow imaging systems without the need for complex flow-focusing. As the image quality is preserved without the need for postacquisition image restoration, our solution is also highly appropriate for on-line applications such as cell sorting.

摘要

微观成像和成像流式细胞术在即时检测分析中具有广泛的应用潜力;然而,它们的焦深较窄,因此需要对样本进行精确的机械或流体聚焦控制,以获取可用于下游分析的高质量图像,这增加了成像系统的成本和复杂性。这种复杂性是基于微观成像或成像流式细胞术的即时检测分析小型化和转化的一个障碍。为了解决这个挑战,我们提出了一种简单的插入式相掩模,具有物理启发的、圆形对称的非球面相位分布,可以将焦深扩展超过 5 倍,同时与其他扩展焦深的方法相比,很大程度上保持了图像质量。我们表明,这种扩展焦深的系统克服了低成本样本腔的制造容差,扩大了低成本物镜的可用视场,并且在不需要复杂的流聚焦的情况下,允许在流式成像系统中提高吞吐量和精度。由于不需要在获取后进行图像恢复即可保持图像质量,因此我们的解决方案也非常适合在线应用,如细胞分选。

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