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使用基于多高度像素超分辨率的无透镜成像的密集样本现场便携式宽场显微镜。

Field-portable wide-field microscopy of dense samples using multi-height pixel super-resolution based lensfree imaging.

机构信息

UCLA Electrical Engineering Department, University of California, Los Angeles, CA 90095, USA.

出版信息

Lab Chip. 2012 Apr 7;12(7):1242-5. doi: 10.1039/c2lc21072j. Epub 2012 Feb 15.

Abstract

We report a field-portable lensfree microscope that can image dense and connected specimens with sub-micron resolution over a large field-of-view of ~30 mm(2) (i.e., ~6.4 mm × ~4.6 mm) using pixel super-resolution and iterative phase recovery techniques. Weighing ~122 grams with dimensions of 4 cm × 4 cm × 15 cm, this microscope records lensfree in-line holograms of specimens onto an opto-electronic sensor-array using partially coherent illumination. To reconstruct the phase and amplitude images of dense samples (with >0.3 billion pixels in each image, i.e., >0.6 billion pixels total), we employ a multi-height imaging approach, where by using a mechanical interface the sensor-to-sample distance is dynamically changed by random discrete steps of e.g., ~10 to 80 μm. By digitally propagating back and forth between these multi-height super-resolved holograms (corresponding to typically 2-5 planes), phase and amplitude images of dense samples can be recovered without the need for any spatial masks or filtering. We demonstrate the performance of this field-portable multi-height lensfree microscope by imaging Papanicolaou smears (also known as Pap tests). Our results reveal the promising potential of this multi-height lensfree computational microscopy platform for e.g., pathology needs in resource limited settings.

摘要

我们报告了一种便携式无透镜显微镜,它可以使用像素超分辨率和迭代相位恢复技术,在约 30 毫米(2)的大视场(即6.4 毫米×4.6 毫米)上以亚微米分辨率对密集和连接的标本进行成像。该显微镜重量约 122 克,尺寸为 4 厘米×4 厘米×15 厘米,使用部分相干照明将无透镜的线 holograms 记录到光电传感器阵列上。为了重建密集样品的相位和幅度图像(每个图像中有超过 30 亿像素,即总共超过 60 亿像素),我们采用了多高度成像方法,通过机械接口,传感器到样品的距离可以通过例如~10 到 80 微米的随机离散步长动态改变。通过在这些多高度超分辨全息图之间来回数字传播(通常对应于 2-5 个平面),可以在不需要任何空间掩模或滤波的情况下恢复密集样品的相位和幅度图像。我们通过对巴氏涂片(也称为巴氏检查)成像来演示这种便携式多高度无透镜显微镜的性能。我们的结果揭示了这种多高度无透镜计算显微镜平台在资源有限环境下的病理需求等方面的有前途的潜力。

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