Pixel-super-resolved lens-free quantitative phase microscopy with partially coherent illumination

Yang Chen, Xuejuan Wu, Linpeng Lu, Jiasong Sun, Runnan Zhang, Wenhui Lin, Yufan Chen, Maciej Trusiak, Peng Gao, Chao Zuo
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Abstract

Lens-free on-chip microscopy (LFOCM) has been widely utilized in digital pathology, drug screening, point-of-care testing (POCT), and quantitative phase imaging (QPI) due to its high throughput imaging capability and compactness. Initially, coherent laser sources were used in LFOCM to generate interference fringes to reconstruct the intensity and phase information of an object. The use of partially coherent light-emitting diodes (LEDs) in LFOCM offers a more portable and cost-effective alternative to conventional coherent illumination sources. However, the coherence-gating effect from a relatively low degree of coherence may cause a blur of high-frequency information in holograms, leading to an inaccurate object recovery. Thus, we present a pixel-super-resolved lens-free quantitative phase microscopy (PSR-LFQPM) with partially coherent illumination, which not only compensates for the impact of low coherence without increasing the volume of the system but also suppresses the theoretical Nyquist-Shannon sampling resolution limit imposed by the sensor pixel size (0.9 μm). Based on the partially coherent imaging model, we integrate the spatial coherence transfer function (SCTF) obtained from the pre-calibrated LED source distribution during the iteration process to obtain an accurate high-resolution recovery. Applying PSR-LFQPM to image living HeLa cells in vitro, we achieve real-time dynamic high-throughput QPI performance (half-pitch resolution of 780 nm with a 1.41-fold improvement compared to results without considering the effect of coherence) across a wide FOV (19.53 mm2). The proposed method provides a compact, low-cost, and high-throughput lens-free on-chip microscopy system for biomedical and POCT applications.

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使用部分相干照明的像素超分辨无透镜定量相位显微镜
无透镜芯片显微镜(LFOCM)因其高通量成像能力和结构紧凑而被广泛应用于数字病理学、药物筛选、护理点检测(POCT)和定量相位成像(QPI)等领域。最初,相干激光源用于 LFOCM,以产生干涉条纹来重建物体的强度和相位信息。在 LFOCM 中使用部分相干发光二极管(LED)提供了一种比传统相干照明光源更便携、更具成本效益的替代方法。然而,相干度相对较低的相干门效应可能会造成全息图中高频信息的模糊,从而导致物体复原不准确。因此,我们提出了一种采用部分相干照明的像素超分辨无透镜定量相位显微镜(PSR-LFQPM),它不仅能在不增加系统体积的情况下补偿低相干性的影响,还能抑制传感器像素尺寸(0.9 μm)带来的理论奈奎斯特-香农采样分辨率限制。基于部分相干成像模型,我们在迭代过程中整合了从预先校准的 LED 光源分布中获得的空间相干传递函数 (SCTF),从而获得精确的高分辨率恢复。将 PSR-LFQPM 应用于体外活体 HeLa 细胞成像,我们实现了宽视场(19.53 平方毫米)实时动态高通量 QPI 性能(半间距分辨率为 780 纳米,与未考虑相干效应的结果相比提高了 1.41 倍)。所提出的方法为生物医学和 POCT 应用提供了一种紧凑、低成本和高通量的无透镜片上显微镜系统。
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