论文标题

传输结构化照明显微镜使用倾斜摩托组件

Transmission Structured Illumination Microscopy using Tilt-mirror Assembly

论文作者

Samanta, Krishnendu, Ahmad, Azeem, Tinguely, Jean-Claude, Ahluwalia, Balpreet Singh, Joseph, Joby

论文摘要

我们提出了倾斜摩擦辅助传输结构化照明显微镜(TSIM)的实验证明,该透射显微镜(TSIM)提供了大量的超级分辨率成像。定制设计的倾斜镜组件被用作照明模块,在该模块中,样品对从相反的镜面反射的两个梁的干扰激发。可调频率结构化模式是通过更改镜面倾斜角来产生的,并且在三个方向上考虑了各向同性分辨率的六边形对称排列。在标准SIM中,利用高数值孔径(NA)目标提供了与视野(FOV)的超分辨率妥协。使用低Na(20x/0.4)物镜检测,我们在实验上证明了〜(0.56mm x 0.35mm)尺寸的单FOV图像,具有〜1.7-和〜2.4倍的分辨率改进(通过调谐倾斜型镜来利用各种照明)在衍射极限上。荧光珠和生物样品都验证了结果。 TSIM几何形状将照明和收集光路径解散,因此可以自由更改成像物镜的镜头,而不会影响倾斜效率定义的照明模式的空间频率。由TSIM支持的大型且可扩展的FOV将发现对扫描大面积的应用程序的用法,例如在时间和时间上必须在时间和时间上都必须将图像关联的病理和应用中。

We present experimental demonstration of tilt-mirror assisted transmission structured illumination microscopy (tSIM) that offers a large field of view super resolution imaging. An assembly of custom-designed tilt-mirrors are employed as the illumination module where the sample is excited with the interference of two beams reflected from the opposite pair of mirror facets. Tunable frequency structured patterns are generated by changing the mirror-tilt angle and the hexagonal-symmetric arrangement is considered for the isotropic resolution in three orientations. Utilizing high numerical aperture (NA) objective in standard SIM provides super-resolution compromising with the field-of-view (FOV). Employing low NA (20X/0.4) objective lens detection, we experimentally demonstrate ~ (0.56mm x 0.35mm) size single FOV image with ~1.7- and ~2.4-fold resolution improvement (exploiting various illumination by tuning tilt-mirrors) over the diffraction limit. The results are verified both for the fluorescent beads as well as biological samples. The tSIM geometry decouples the illumination and the collection light paths consequently enabling free change of the imaging objective lens without influencing the spatial frequency of the illumination pattern that are defined by the tilt-mirrors. The large and scalable FoV supported by tSIM will find usage for applications where scanning large areas are necessary as in pathology and applications where images must be correlated both in space and time.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源