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On the retrieval of crystallographic information from atom probe microscopy data via signal mapping from the detector coordinate space

机译:通过探测器坐标空间通过信号映射从原子探针显微镜数据检索晶体探针显微镜数据的检索

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摘要

Atom probe tomography is a powerful microscopy technique capable of reconstructing the 3D position and chemical identity of millions of atoms within engineering materials, at the atomic level. Crystallographic information contained within the data is particularly valuable for the purposes of reconstruction calibration and grain boundary analysis. Typically, analysing this data is a manual, time-consuming and error prone process. In many cases, the crystallographic signal is so weak that it is difficult to detect at all. In this study, a new automated signal processing methodology is demonstrated. We use the affine properties of the detector coordinate space, or the 'detector stack', as the basis for our calculations. The methodological framework and the visualisation tools are shown to be superior to the standard method of crystallographic pole visualisation directly from field evaporation images and there is no requirement for iterations between a full real-space initial tomographic reconstruction and the detector stack. The mapping approaches are demonstrated for aluminium, tungsten, magnesium and molybdenum. Implications for reconstruction calibration, accuracy of crystallographic measurements, reliability and repeatability are discussed. (C) 2018 Elsevier B.V. All rights reserved.
机译:原子探测层析成像是一种强大的显微镜技术,能够在原子水平处重建在工程材料中数百万原子的3D位置和化学特性。数据中包含的晶体信息对于重建校准和晶界分析来说是特别有价值的。通常,分析此数据是手动,耗时和易于易于的过程。在许多情况下,晶体信号较弱,难以检测。在本研究中,证明了一种新的自动信号处理方法。我们使用探测器坐标空间或“探测器堆栈”的仿射属性,作为计算的基础。该方法论框架和可视化工具被示出优于直接来自场蒸发图像的晶体极可视化的标准方法,并且没有要求完整的真实空间初始断层切换重建与检测器堆栈之间的迭代。对铝,钨,镁和钼进行说明的映射方法。讨论了重建校准,结晶测量,可靠性和可重复性的准确性的影响。 (c)2018 Elsevier B.v.保留所有权利。

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