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在存在噪声和残余像差的情况下,从扫描透射电子显微镜图像中进行逐个原子的化学识别。

Atom-by-atom chemical identification from scanning transmission electron microscopy images in presence of noise and residual aberrations.

作者信息

Hofer Christoph, Skákalová Viera, Haas Jonas, Wang Xiao, Braun Kai, Pennington Robert S, Meyer Jannik C

机构信息

Institute for Applied Physics, Eberhard Karls University of Tübingen, Auf der Morgenstelle 10, D-72076, Tübingen, Germany; Natural and Medical Sciences Institute at the University of Tübingen, Markwiesenstr. 55, D-72770 Reutlingen, Germany; Faculty of Physics, University of Vienna, Boltzmanng. 5, 1090 Vienna, Austria.

Faculty of Physics, University of Vienna, Boltzmanng. 5, 1090 Vienna, Austria.

出版信息

Ultramicroscopy. 2021 Aug;227:113292. doi: 10.1016/j.ultramic.2021.113292. Epub 2021 May 8.

Abstract

The simple dependence of the intensity in annular dark field scanning transmission electron microscopy images on the atomic number provides (to some extent) chemical information about the sample, and even allows an elemental identification in the case of light-element single-layer samples. However, the intensity of individual atoms and atomic columns is affected by residual aberrations and the confidence of an identification is limited by the available signal to noise. Here, we show that matching a simulation to an experimental image by iterative optimization provides a reliable analysis of atomic intensities even in presence of residual non-round aberrations. We compare our new method with other established approaches demonstrating its high reliability for images recorded at limited dose and with different aberrations. This is of particular relevance for analyzing moderately beam-sensitive materials, such as most 2D materials, where the limited sample stability often makes it difficult to obtain spectroscopic information at atomic resolution.

摘要

环形暗场扫描透射电子显微镜图像中的强度对原子序数的简单依赖性(在一定程度上)提供了有关样品的化学信息,甚至在轻元素单层样品的情况下还能进行元素识别。然而,单个原子和原子柱的强度会受到残余像差的影响,并且识别的置信度受到可用信噪比的限制。在这里,我们表明通过迭代优化使模拟与实验图像匹配,即使存在残余的非圆形像差,也能对原子强度进行可靠分析。我们将我们的新方法与其他既定方法进行比较,证明了其对于在有限剂量和不同像差条件下记录的图像具有高可靠性。这对于分析中等束敏感材料(例如大多数二维材料)尤为重要,因为有限的样品稳定性常常使得难以在原子分辨率下获得光谱信息。

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