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Wide-field Fourier ptychographic microscopy using laser illumination source

机译:使用激光光源的宽视场傅里叶指纹图谱

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摘要

Fourier ptychographic (FP) microscopy is a coherent imaging method that can synthesize an image with a higher bandwidth using multiple low-bandwidth images captured at different spatial frequency regions. The method’s demand for multiple images drives the need for a brighter illumination scheme and a high-frame-rate camera for a faster acquisition. We report the use of a guided laser beam as an illumination source for an FP microscope. It uses a mirror array and a 2-dimensional scanning Galvo mirror system to provide a sample with plane-wave illuminations at diverse incidence angles. The use of a laser presents speckles in the image capturing process due to reflections between glass surfaces in the system. They appear as slowly varying background fluctuations in the final reconstructed image. We are able to mitigate these artifacts by including a phase image obtained by differential phase contrast (DPC) deconvolution in the FP algorithm. We use a 1-Watt laser configured to provide a collimated beam with 150 mW of power and beam diameter of 1 cm to allow for the total capturing time of 0.96 seconds for 96 raw FPM input images in our system, with the camera sensor’s frame rate being the bottleneck for speed. We demonstrate a factor of 4 resolution improvement using a 0.1 NA objective lens over the full camera field-of-view of 2.7 mm by 1.5 mm.
机译:傅里叶频谱分析(FP)显微镜是一种相干成像方法,可以使用在不同空间频率区域捕获的多个低带宽图像合成具有更高带宽的图像。该方法对多张图像的需求驱使了对更明亮的照明方案和高帧率相机以更快采集的需求。我们报告了使用引导激光束作为FP显微镜的照明源。它使用反射镜阵列和二维扫描Galvo反射镜系统为样品提供具有不同入射角的平面波照明。由于系统中玻璃表面之间的反射,使用激光会在图像捕获过程中出现斑点。它们在最终的重建图像中表现为缓慢变化的背景波动。通过在FP算法中包含通过差分相位对比(DPC)反卷积获得的相位图像,我们能够减轻这些伪影。我们使用1-Watt激光器配置为提供150 mW功率的准直光束和1 cm的光束直径,以便在我们的系统中对96个原始FPM输入图像的总捕获时间为0.96秒,且相机传感器的帧速率为是速度的瓶颈。我们展示了使用0.1 NA物镜在2.7 mm x 1.5 mm的整个相机视场中提高4分辨率的因素。

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