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Wide-Field Lensless 3D Imaging and Visualization of Micro-objects

机译:微型物体的广角无镜头3D成像和可视化

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摘要

Three dimensional (3D) imaging of objects requires the retrieval of both phase and amplitude of the object wavefront. Two beam techniques such as digital holography can reconstruct the whole field from the interference pattern, resulting from the superposition of the object wavefront and a known reference wavefront using light sources with sufficient coherence length. The diffraction field originating from the interaction of the probe wavefront with the object contains the spatial frequency information about the object. By studying the variation in the diffraction field with axial position, the phase of the object wavefront can be determined by iterative use of the scalar diffraction integral. Based on this approach, the development of a lensless whole field imaging technique using a low temporally coherent source (LED) in combination with axially arranged sensors is presented. Since the developed technique uses a single beam approach, less complex instrumentation compared to interferometric (two-beam) techniques is required. The technique was tested on technical as well as biological specimen to reconstruct and display their intensity and phase distributions. Since the developed microscope is lensless in nature with unit magnification, larger field of views become possible.
机译:物体的三维(3D)成像需要同时获得物体波前的相位和振幅。诸如数字全息术之类的两束技术可以利用具有足够相干长度的光源,通过物体波前和已知参考波前的叠加,从干涉图样重建整个场。源自探测波前与物体相互作用的衍射场包含有关物体的空间频率信息。通过研究衍射场随轴向位置的变化,可以通过重复使用标量衍射积分来确定物波前的相位。基于这种方法,提出了使用低时间相干源(LED)结合轴向布置的传感器的无透镜全视场成像技术的发展。由于开发的技术使用单光束方法,因此与干涉测量(双光束)技术相比,仪器的复杂度要求较低。对该技术进行了技术和生物标本测试,以重建和显示其强度和相分布。由于开发的显微镜本质上是无透镜且具有单位放大倍数,因此更大的视野成为可能。

著录项

  • 来源
    《Journal of display technology》 |2016年第11期|1283-1289|共7页
  • 作者单位

    Optics Laboratory, Applied Physics Department, Faculty of Technology & Engineering, Maharaja Sayajirao University of Baroda, Vadodara, India;

    Optics Laboratory, Applied Physics Department, Faculty of Technology & Engineering, Maharaja Sayajirao University of Baroda, Vadodara, India;

    Department of atomic and Molecular Physics, Manipal University, Manipal, India;

    Optics Laboratory, Applied Physics Department, Faculty of Technology & Engineering, Maharaja Sayajirao University of Baroda, Vadodara, India;

    Electrical and Computer Engineering Department, University of Connecticut, Storrs, CT, USA;

    Institut für Technische Optik, Universität Stuttgart, Stuttgart, Germany;

    Optics Laboratory, Applied Physics Department, Faculty of Technology & Engineering, Maharaja Sayajirao University of Baroda, Vadodara, India;

    Optics Laboratory, Applied Physics Department, Faculty of Technology & Engineering, Maharaja Sayajirao University of Baroda, Vadodara, India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Diffraction; Image reconstruction; Imaging; Sensors; Coherence; Probes;

    机译:衍射;图像重建;成像;传感器;相干;探针;

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