Martinez G T, Rosenauer A, De Backer A, Verbeeck J, Van Aert S
Electron Microscopy for Materials Science (EMAT), University of Antwerp, Gronenborgerlaan 171, 2020 Antwerp, Belgium.
Institut für Festkörperphysik, Universität Bremen, Otto-Hahn-Alle 1, D-28359 Bremen, Germany.
Ultramicroscopy. 2014 Feb;137:12-9. doi: 10.1016/j.ultramic.2013.11.001. Epub 2013 Nov 9.
High angle annular dark field scanning transmission electron microscopy (HAADF STEM) images provide sample information which is sensitive to the chemical composition. The image intensities indeed scale with the mean atomic number Z. To some extent, chemically different atomic column types can therefore be visually distinguished. However, in order to quantify the atomic column composition with high accuracy and precision, model-based methods are necessary. Therefore, an empirical incoherent parametric imaging model can be used of which the unknown parameters are determined using statistical parameter estimation theory (Van Aert et al., 2009, [1]). In this paper, it will be shown how this method can be combined with frozen lattice multislice simulations in order to evolve from a relative toward an absolute quantification of the composition of single atomic columns with mixed atom types. Furthermore, the validity of the model assumptions are explored and discussed.
高角度环形暗场扫描透射电子显微镜(HAADF STEM)图像提供了对化学成分敏感的样品信息。图像强度确实与平均原子序数Z成比例。因此,在一定程度上,可以直观地区分化学组成不同的原子列类型。然而,为了高精度和高精确地量化原子列组成,基于模型的方法是必要的。因此,可以使用一种经验性非相干参数成像模型,其未知参数通过统计参数估计理论来确定(Van Aert等人,2009年,[1])。在本文中,将展示如何将该方法与冻结晶格多切片模拟相结合,以便从相对定量发展到对具有混合原子类型的单个原子列组成进行绝对定量。此外,还对模型假设的有效性进行了探索和讨论。