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Improving Signal to Noise in Labeled Biological Specimens using Energy-Filtered TEM of sections with a Drift Correction Strategy and a Direct Detection Device

机译:使用带有漂移校正策略和直接检测装置的能量过滤TEM切片改善标记生物样品中的信噪比

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摘要

Energy filtered transmission electron microscopy techniques are regularly used to build elemental maps of spatially distributed nanoparticles in materials and biological specimens. When working with thick biological sections, EELS techniques involving core-loss electrons often require exposures exceeding several minutes to provide sufficient signal to noise. Image quality with these long exposures is often compromised by specimen drift, which results in blurring and reduced resolution. To mitigate drift artifacts, a series of short exposure images can be acquired, aligned, and merged to form a single image. For samples where the target elements have extremely low signal yields, the use of CCD based detectors for this purpose can be problematic. At short acquisition times, the images produced by CCDs can be noisy and may contain fixed pattern artifacts that impact subsequent correlative alignment. Here we report on the use of direct electron detection devices (DDD’s) to increase the signal to noise as compared to CCD’s. A 3x improvement in signal is reported with a DDD vs. a comparably formatted CCD, with equivalent dose on each detector. With the fast rolling-readout design of the DDD, the duty cycle provides a major benefit, as there is no dead time between successive frames.
机译:能量过滤透射电子显微镜技术通常用于构建材料和生物样本中空间分布的纳米粒子的元素图。当处理厚厚的生物切片时,涉及芯损耗电子的EELS技术通常需要暴露超过几分钟才能提供足够的信噪比。这些长时间曝光的图像质量通常会因样品漂移而受损,从而导致图像模糊和分辨率降低。为了减轻漂移伪影,可以获取,对齐和合并一系列短时间曝光图像以形成单个图像。对于目标元素信号产生率极低的样品,为此使用基于CCD的检测器可能会出现问题。在较短的采集时间,由CCD产生的图像可能有噪声,并且可能包含影响后续相关对齐的固定模式伪像。在这里,我们报道了与CCD相比,使用直接电子检测设备(DDD)来提高信噪比的方法。与同等格式的CCD相比,DDD的信号提高了3倍,每个探测器的剂量相等。采用DDD的快速滚动读出设计,由于连续帧之间没有停滞时间,因此占空比提供了一个主要好处。

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