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Towards microscopic resolution in holoscopy

机译:朝着全息术的显微分辨率迈进

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摘要

Holoscopy is a new imaging approach combining digital holography and full-field Fourier-domain optical coherence tomography. The interference pattern between light scattered by a sample and a defined reference wave is recorded and processed numerically. During reconstruction numerical refocusing is applied, overcoming the limitation of the focal depth and thus a uniform, diffraction limited lateral resolution over the whole measurement depth can be obtained. The advantage of numerical refocusing becomes especially significant for imaging at high numerical apertures (NAs). We use a high-resolution setup based on a Mach-Zehnder interferometer with an high-resolution microscope objective (NA = 0.75). For reliable reconstruction of a sample volume the Rayleigh length of the microscope objective and the axial resolution, given by the spectral range of the light source, need to be matched. For a 0.75 NA objective a tunable light source with a sweeping range of ~ 300 nm is required. Here we present as a first step a tunable Ti:sapphire laser with a tuning range of 187 nm. By characterizing the spectral properties of the Ti:sapphire laser and determining the axial point spread function we demonstrate the feasibility of this light source for high-resolution holoscopy.
机译:全息术是一种结合数字全息术和全场傅里叶域光学相干断层扫描技术的新成像方法。记录并数值处理由样本散射的光和定义的参考波之间的干涉图案。在重建过程中,应用数值重新聚焦,克服了焦深的限制,因此可以在整个测量深度上获得均匀,受衍射限制的横向分辨率。数值重聚焦的优势对于在高数值孔径(NAs)下成像尤其重要。我们使用基于Mach-Zehnder干涉仪和高分辨率显微镜物镜(NA = 0.75)的高分辨率设置。为了可靠地重建样品体积,需要匹配显微镜物镜的瑞利长度和由光源光谱范围给出的轴向分辨率。对于0.75 NA物镜,需要具有〜300 nm扫描范围的可调光源。在这里,我们首先介绍可调范围为187 nm的可调谐Ti:蓝宝石激光器。通过表征Ti:蓝宝石激光器的光谱特性并确定轴点扩展函数,我们证明了该光源用于高分辨率全息检查的可行性。

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