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Atomic electric fields revealed by a quantum mechanical approach to electron picodiffraction

机译:通过量子力学方法揭示电子微衍射的原子电场

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摘要

By focusing electrons on probes with a diameter of 50 pm, aberration-corrected scanning transmission electron microscopy (STEM) is currently crossing the border to probing subatomic details. A major challenge is the measurement of atomic electric fields using differential phase contrast (DPC) microscopy, traditionally exploiting the concept of a field- induced shift of diffraction patterns. Here we present a simplified quantum theoretical interpretation of DPC. This enables us to calculate the momentum transferred to the STEM probe from diffracted intensities recorded on a pixel array instead of conventional segmented bright- field detectors. The methodical development yielding atomic electric field, charge and electron density is performed using simulations for binary GaN as an ideal model system. We then present a detailed experimental study of SrTiO3 yielding atomic electric fields, validated by comprehensive simulations. With this interpretation and upgraded instrumentation, STEM is capable of quantifying atomic electric fields and high-contrast imaging of light atoms.
机译:通过将电子聚焦在直径为50 pm的探针上,像差校正的扫描透射电子显微镜(STEM)目前正越界以探测亚原子细节。一个主要的挑战是使用微分相差(DPC)显微镜测量原子电场,传统上是利用场致衍射图谱移动的概念。在这里,我们提出了DPC的简化量子理论解释。这使我们能够根据记录在像素阵列上而不是传统的分段明场检测器的衍射强度来计算转移到STEM探针的动量。产生原子电场,电荷和电子密度的方法开发是使用模拟二元GaN作为理想模型系统进行的。然后,我们提供了SrTiO3产生原子电场的详细实验研究,并通过全面的模拟进行了验证。通过这种解释和升级的仪器,STEM能够量化原子电场和轻原子的高对比度成像。

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