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首页> 外文期刊>Ultramicroscopy >Enhanced phase contrast transfer using ptychography combined with a pre-specimen phase plate in a scanning transmission electron microscope
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Enhanced phase contrast transfer using ptychography combined with a pre-specimen phase plate in a scanning transmission electron microscope

机译:在扫描透射电子显微镜中,通过使用分型术结合样品前相板增强相衬转移

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The ability to image light elements in both crystalline and noncrystalline materials at near atomic resolution with an enhanced contrast is highly advantageous to understand the structure and properties of a wide range of beam sensitive materials including biological specimens and molecular heterostructures. This requires the imaging system to have an efficient phase contrast transfer at both low and high spatial frequencies. In this work we introduce a new phase contrast imaging method in a scanning transmission electron microscope (STEM) using a pre-specimen phase plate in the probe forming aperture, combined with a fast pixelated detector to record diffraction patterns at every probe position, and phase reconstruction using ptychography. The phase plate significantly enhances the contrast transfer of low spatial frequency information, and ptychography maximizes the extraction of the phase information at all spatial frequencies. In addition, the STEM probe with the presence of the phase plate retains its atomic resolution, allowing simultaneous incoherent Z-contrast imaging to be obtained along with the ptychographic phase image. An experimental image of Au nanoparticles on a carbon support shows high contrast for both materials. Multislice image simulations of a DNA molecule shows the capability of imaging soft matter at low dose conditions, which implies potential applications of low dose imaging of a wide range of beam sensitive materials. Published by Elsevier B.V.
机译:以接近的原子分辨率以增强的对比度对晶体和非晶态材料中的光元素进行成像的能力,对于理解包括生物样本和分子异质结构在内的各种光束敏感材料的结构和特性非常有利。这要求成像系统在低空间频率和高空间频率上均具有有效的相衬转移。在这项工作中,我们在扫描透射电子显微镜(STEM)中引入了一种新的相衬成像方法,该方法使用探针形成孔中的标本预先相板与快速像素化检测器组合以记录每个探针位置和相的衍射图样使用笔法进行重建。相板显着增强了低空间频率信息的对比度传递,并且谱图技术使所有空间频率的相位信息提取最大化。此外,具有相位板的STEM探针可保持其原子分辨率,从而可以与排印相图像同时获得不相干的Z对比成像。在碳载体上的金纳米颗粒的实验图像显示了两种材料的高对比度。 DNA分子的多层图像模拟显示了在低剂量条件下对软物质进行成像的能力,这意味着对各种射线敏感材料进行低剂量成像的潜在应用。由Elsevier B.V.发布

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