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Condenser-free contrast methods for transmitted-light microscopy

机译:透射光显微镜的无聚光对比方法

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Phase contrast microscopy allows the study of highly transparent yet detail-rich specimens by producing intensity contrast from phase objects within the sample. Presented here is a generalized phase contrast illumination schema in which condenser optics are entirely abrogated, yielding a condenser-free yet highly effective method of obtaining phase contrast in transmitted-light microscopy. A ring of light emitting diodes (LEDs) is positioned within the light-path such that observation of the objective back focal plane places the illuminating ring in appropriate conjunction with the phase ring. It is demonstrated that true Zernike phase contrast is obtained, whose geometry can be flexibly manipulated to provide an arbitrary working distance between illuminator and sample. Condenser-free phase contrast is demonstrated across a range of magnifications (4-100x), numerical apertures (0.13-1.65NA) and conventional phase positions. Also demonstrated is condenser-free darkfield microscopy as well as combinatorial contrast including Rheinberg illumination and simultaneous, colour-contrasted, brightfield, darkfield and Zernike phase contrast. By providing enhanced and arbitrary working space above the preparation, a range of concurrent imaging and electrophysiological techniques will be technically facilitated. Condenser-free phase contrast is demonstrated in conjunction with scanning ion conductance microscopy (SICM), using a notched ring to admit the scanned probe. The compact, versatile LED illumination schema will further lend itself to novel next-generation transmitted-light microscopy designs. The condenser-free illumination method, using rings of independent or radially-scanned emitters, may be exploited in future in other electromagnetic wavebands, including X-rays or the infrared.
机译:相衬显微镜通过从样品中的相对象产生强度对比,可以研究高度透明但细节丰富的样品。这里介绍的是广义相衬照明方案,其中聚光镜被完全取消,从而产生了无聚光镜但非常有效的在透射光显微镜中获得相衬的方法。一圈发光二极管(LED)放置在光路内,以便观察物镜后焦平面将照明环与相环适当地结合在一起。证明了获得了真正的泽尼克相衬,可以灵活地控制其几何形状以在照明器和样品之间提供任意的工作距离。在各种放大倍率(4-100x),数值孔径(0.13-1.65NA)和常规相位位置范围内均证明了无冷凝器的相位衬度。还展示了无聚光镜的暗场显微镜以及包括Rheinberg照明在内的组合对比度,以及同时进行了颜色对比的明场,暗场和Zernike相衬。通过在制剂上方提供增强的任意工作空间,将在技术上促进一系列同时进行的成像和电生理技术。无冷凝器的相衬与扫描离子电导显微镜(SICM)结合使用,使用带缺口的环接纳扫描的探针。紧凑,通用的LED照明方案将进一步使其适用于新型的下一代透射光显微镜设计。使用独立或径向扫描的发射器环的无冷凝器照明方法,将来可能会在包括X射线或红外线在内的其他电磁波段中被采用​​。

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