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High-precision scanning transmission electron microscopy at coarse pixel sampling for reduced electron dose

机译:粗像素采样的高精度扫描透射电子显微镜,可降低电子剂量

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Determining the precise atomic structure of materials’ surfaces, defects, and interfaces is important to help provide the connection between structure and important materials’ properties. Modern scanning transmission electron microscopy (STEM) techniques now allow for atomic resolution STEM images to have down to sub-picometer precision in locating positions of atoms, but these high-precision techniques generally require large electron doses, making them less useful for beam-sensitive materials. Here, we show that 1- to 2-pm image precision is possible by non-rigidly registering and averaging a high-angle dark field image series of a 5- to 6-nm Au nanoparticle even though a very coarsely sampled image and decreased exposure time was used to minimize the electron dose. These imaging conditions minimize the damage to the nanoparticle and capture the whole nanoparticle in the same image. The high-precision STEM image reveals bond length contraction around the entire nanoparticle surface, and no bond length variation along a twin boundary that separates the nanoparticle into two grains. Surface atoms at the edges and corners exhibit larger bond length contraction than atoms near the center of surface facets
机译:确定材料表面,缺陷和界面的精确原子结构对于帮助提供结构与重要材料的性能之间的联系非常重要。现在,现代的扫描透射电子显微镜(STEM)技术允许原子分辨率的STEM图像在原子定位中具有亚皮秒级的精度,但是这些高精度技术通常需要大剂量的电子,因此对电子束敏感的用途不大材料。在这里,我们表明,通过非刚性配准和平均5至6 nm Au纳米粒子的高角度暗场图像序列,即使获得非常粗糙的采样图像并减少曝光,也可以实现1-2 pm的图像精度时间用于最小化电子剂量。这些成像条件使对纳米颗粒的损害最小化,并在同一图像中捕获整个纳米颗粒。高精度STEM图像显示整个纳米粒子表面周围的键长收缩,并且沿将纳米粒子分成两个晶粒的孪生边界没有键长变化。边缘和拐角处的表面原子比靠近表面小面中心的原子具有更大的键长收缩

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