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Single-Ion Deconvolution of Mass Peak Overlaps for Atom Probe Microscopy

机译:原子探针显微镜的质量峰重叠的单离子去卷积

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摘要

Due to the intrinsic evaporation properties of the material studied, insufficient mass-resolving power and lack of knowledge of the kinetic energy of incident ions, peaks in the atom probe mass-to-charge spectrum can overlap and result in incorrect composition measurements. Contributions to these peak overlaps can be deconvoluted globally, by simply examining adjacent peaks combined with knowledge of natural isotopic abundances. However, this strategy does not account for the fact that the relative contributions to this convoluted signal can often vary significantly in different regions of the analysis volume; e.g., across interfaces and within clusters. Some progress has been made with spatially localized deconvolution in cases where the discrete microstructural regions can be easily identified within the reconstruction, but this means no further point cloud analyses are possible. Hence, we present an ion-by-ion methodology where the identity of each ion, normally obscured by peak overlap, is resolved by examining the isotopic abundance of their immediate surroundings. The resulting peak-deconvoluted data are a point cloud and can be analyzed with any existing tools. We present two detailed case studies and discussion of the limitations of this new technique.
机译:由于所研究的材料的内在蒸发性能,质量分辨率不足和对入射离子的动能缺乏了解,原子探针质量与电荷光谱中的峰可以重叠并导致不正确的组成测量。通过简单地检查相邻的峰值结合自然同位素丰富的知识,可以全球对这些峰值重叠的贡献可以全球对抗。然而,这种策略不考虑到这种卷曲信号的相对贡献通常可以在分析量的不同区域中显着变化;例如,跨接口和集群。在可以在重建内容易地识别离散微结构区域的情况下,在空间局部化的折卷积中已经进行了一些进展,但这意味着不可能进一步云分析。因此,我们通过检查其直接周围环境的同位素丰富来解决每种离子的离子方法,通常通过峰值重叠而模糊。得到的峰 - 去折叠数据是点云,可以用任何现有工具分析。我们提出了两个详细的案例研究和讨论了这种新技术的局限性。

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