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A computational geometry framework for the optimisation of atom probe reconstructions

机译:用于优化原子探针重建的计算几何框架

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In this paper, we present pathways for improving the reconstruction of atom probe data on a coarse ( > 10 nm) scale, based on computational geometry. We introduce a way to iteratively improve an atom probe reconstruction by adjusting it, so that certain known shape criteria are fulfilled. This is achieved by creating an implicit approximation of the reconstruction through a barycentric coordinate transform. We demonstrate the application of these techniques to the compensation of trajectory aberrations and the iterative improvement of the reconstruction of a dataset containing a grain boundary. We also present a method for obtaining a hull of the dataset in both detector and reconstruction space. This maximises data utilisation, and can be used to compensate for ion trajectory aberrations caused by residual fields in the ion flight path through a 'master curve' and correct for overall shape deviations in the data. (C) 2016 Elsevier B.V. All rights reserved.
机译:在本文中,我们根据计算几何学提出了在粗略(> 10 nm)规模上改进原子探针数据重建的途径。我们介绍了一种通过调整迭代方式来改进原子探针重构的方法,从而满足某些已知的形状标准。这是通过通过重心坐标转换创建重构的隐式近似来实现的。我们证明了这些技术在轨迹像差补偿和迭代改进包含晶粒边界的数据集重建中的应用。我们还提出了一种用于在检测器空间和重建空间中获取数据集的外壳的方法。这可最大程度地利用数据,并可用于补偿由离子飞行路径中的残留场通过“主曲线”引起的离子轨迹像差,并校正数据中的整体形状偏差。 (C)2016 Elsevier B.V.保留所有权利。

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