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通过第一性原理计算绘制原子探针蒸发事件的能量图。

Mapping energetics of atom probe evaporation events through first principles calculations.

机构信息

Department of Materials Science and Engineering and Institute for Combinatorial Discovery, Iowa State University, 2220 Hoover Hall, Iowa State University, Ames, IA 50011-2230, United States.

出版信息

Ultramicroscopy. 2013 Sep;132:143-51. doi: 10.1016/j.ultramic.2013.02.007. Epub 2013 Feb 28.

Abstract

The purpose of this work is to use atomistic modeling to determine accurate inputs into the atom probe tomography (APT) reconstruction process. One of these inputs is evaporation field; however, a challenge occurs because single ions and dimers have different evaporation fields. We have calculated the evaporation field of Al and Sc ions and Al-Al and Al-Sc dimers from an L1₂-Al₃Sc surface using ab initio calculations and with a high electric field applied to the surface. The evaporation field is defined as the electric field at which the energy barrier size is calculated as zero, corresponding to the minimum field that atoms from the surface can break their bonds and evaporate from the surface. The evaporation field of the surface atoms are ranked from least to greatest as: Al-Al dimer, Al ion, Sc ion, and Al-Sc dimer. The first principles results were compared with experimental data in the form of an ion evaporation map, which maps multi-ion evaporations. From the ion evaporation map of L1₂-Al₃Sc, we extract relative evaporation fields and identify that an Al-Al dimer has a lower evaporation field than an Al-Sc dimer. Additionally, comparatively an Al-Al surface dimer is more likely to evaporate as a dimer, while an Al-Sc surface dimer is more likely to evaporate as single ions. These conclusions from the experiment agree with the ab initio calculations, validating the use of this approach for modeling APT energetics.

摘要

这项工作的目的是使用原子级建模来确定原子探针断层成像 (APT) 重建过程的准确输入。这些输入之一是蒸发场;然而,由于单离子和二聚体具有不同的蒸发场,因此会出现一个挑战。我们使用从头算计算并在表面施加高电场,计算了 L1₂-Al₃Sc 表面上的 Al 和 Sc 离子以及 Al-Al 和 Al-Sc 二聚体的蒸发场。蒸发场被定义为能量势垒大小计算为零的电场,对应于从表面可以打破键并蒸发的最小电场原子。表面原子的蒸发场从最小到最大的顺序排列为:Al-Al 二聚体、Al 离子、Sc 离子和 Al-Sc 二聚体。第一性原理结果与以多离子蒸发图形式表示的实验数据进行了比较,该图绘制了多离子蒸发图。从 L1₂-Al₃Sc 的离子蒸发图中,我们提取了相对蒸发场,并确定 Al-Al 二聚体的蒸发场低于 Al-Sc 二聚体。此外,比较而言,Al-Al 表面二聚体更可能作为二聚体蒸发,而 Al-Sc 表面二聚体更可能作为单离子蒸发。实验得出的这些结论与从头算计算一致,验证了这种方法在模拟 APT 能学中的应用。

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