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Controlled power delivery for super-resolution imaging of biological samples using Digital Micromirror Device

机译:使用数字微镜设备对生物样品进行超分辨率成像的受控功率传输

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Localization based super resolution images of a biological sample is generally achieved by using high power laser illumination with long exposure time which unfortunately increases photo-toxicity of a sample, making super resolution microscopy, in general, incompatible with live cell imaging. Furthermore, the limitation of photobleaching reduces the ability to acquire time lapse images of live biological cells using fluorescence microscopy. Digital Light Processing (DLP) technology can deliver light at grey scale levels by flickering digital micromirrors at around 290 Hz enabling highly controlled power delivery to samples. In this work, Digital Micromirror Device (DMD) is implemented in an inverse Schiefspiegler telescope setup to control the power and pattern of illumination for super resolution microscopy. We can achieve spatial and temporal patterning of illumination by controlling the DMD pixel by pixel. The DMD allows us to control the power and spatial extent of the laser illumination. We have used this to show that we can reduce the power delivered to the sample to allow for longer time imaging in one area while achieving sub-diffraction STORM imaging in another using higher power densities.
机译:通常通过使用具有长曝光时间的高功率激光照射来获得生物样品的基于定位的超分辨率图像,这不幸地增加了样品的光毒性,使得超分辨率显微镜通常与活细胞成像不兼容。此外,光漂白的局限性降低了使用荧光显微镜获取活生物细胞的延时图像的能力。数字光处理(DLP)技术可以通过以290 Hz左右的频率闪烁数字微镜来提供灰度级的光,从而实现对样品的高度受控的功率传输。在这项工作中,数字微镜设备(DMD)在反Schiefspiegler望远镜装置中实现,以控制超分辨率显微镜的照明功率和照明方式。我们可以通过逐像素控制DMD来实现照明的时空图案化。 DMD使我们能够控制激光照明的功率和空间范围。我们用它来表明,我们可以减少传递给样品的功率,以允许在一个区域中进行更长的成像,同时使用更高的功率密度在另一个区域中实现亚衍射STORM成像。

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