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Super-resolution imaging in optical scanning holography using structured illumination

机译:使用结构照明的光学扫描全息内的超分辨率成像

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As a specific digital holographic microscopy system, optical scanning holography (OSH) is an appealing technique that makes use of the advantages of holography in the application of optical microscopy. In OSH system, a three-dimensional object is scanned with a Fresnel zone plate in a raster fashion, and the electrical signals are demodulated into a complex hologram by heterodyne detection. Then the recorded light wavefront information contained in the hologram allows one to digitally reconstruct the specimen for multiple purposes such as optical sectioning, extended focused imaging as well as three-dimensional imaging. According to Abbe criterion, however, akin to those conventional microscopic imaging systems, OSH suffers from limited resolving power due to the finite sizes of the objective lens and the aperture, i.e., low numerical aperture. To bypass the diffraction barrier in light microscopy, various super-resolution imaging techniques have been proposed. Among those methods, structured illumination is an ensemble imaging concept that modulates the spatial frequency by projecting additional well-defined patterns with different orientation and phase shift onto the specimen. Computational algorithms are then applied to remove the effect of the structure and to reconstruct a super-resolved image beyond the diffraction-limit. In this paper, we introduce this technique in OSH system to scale down the spatial resolution beyond the diffraction limit. The performance of the proposed method is validated by simulation and experimental results.
机译:作为特定数字全息显微镜系统,光学扫描全息术(OSH)是一种吸引力的技术,它利用全息术在施加光学显微镜时的优点。在OSH系统中,用漂移的方式扫描三维物体,以光栅方式扫描菲涅耳区板,并且通过外差检测将电信号解调成复杂全息图。然后,全息图中包含的记录光波前信息允许人们为多种目的进行数字重建样本,例如光学切片,扩展聚焦成像以及三维成像。然而,根据阿贝标准,类似于这些传统的微观成像系统,OSH由于物镜的有限尺寸和孔径,即低数值孔径而导致的分辨率有限。为了绕过光学显微镜的衍射屏障,已经提出了各种超分辨率的成像技术。在这些方法中,结构化照明是一种集合成像概念,其通过将具有不同方向和相移到样本的不同方向和相移的额外明确定义的图案来调制空间频率。然后应用计算算法以去除结构的效果并重建超出衍射极限的超分辨图像。在本文中,我们在OSH系统中介绍了这种技术,以缩小超出衍射极限的空间分辨率。通过模拟和实验结果验证了所提出的方法的性能。

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