基于约束优化的精细结构拟合提高了电子能量损失谱定量的精密度和准确度。

IF 2.1 3区 工程技术 Q2 MICROSCOPY Ultramicroscopy Pub Date : 2025-03-01 Epub Date: 2024-12-05 DOI:10.1016/j.ultramic.2024.114084
Daen Jannis, Wouter Van den Broek, Zezhong Zhang, Sandra Van Aert, Jo Verbeeck
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引用次数: 0

摘要

通过计算贝特求和规则,导出了电子能量损失谱中电离边缘精细结构的线性等式形式的边界条件。这一条件随后被用作元素丰度估算过程中的约束条件,显示出明显提高的精度和准确性,并降低了对模型参数数量的敏感性。此外,精细结构以自动化的方式可靠地从光谱中提取出来,从而提供了关于样品电子特性的关键信息,这些信息很难或不可能通过其他方式获得。由于这种方法可以不需要用户提供输入,因此可以防止潜在的偏见来源。
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Improved precision and accuracy of electron energy-loss spectroscopy quantification via fine structure fitting with constrained optimization.

By working out the Bethe sum rule, a boundary condition that takes the form of a linear equality is derived for the fine structure observed in ionization edges present in electron energy-loss spectra. This condition is subsequently used as a constraint in the estimation process of the elemental abundances, demonstrating starkly improved precision and accuracy and reduced sensitivity to the number of model parameters. Furthermore, the fine structure is reliably extracted from the spectra in an automated way, thus providing critical information on the sample's electronic properties that is hard or impossible to obtain otherwise. Since this approach allows dispensing with the need for user-provided input, a potential source of bias is prevented.

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来源期刊
Ultramicroscopy
Ultramicroscopy 工程技术-显微镜技术
CiteScore
4.60
自引率
13.60%
发文量
117
审稿时长
5.3 months
期刊介绍: Ultramicroscopy is an established journal that provides a forum for the publication of original research papers, invited reviews and rapid communications. The scope of Ultramicroscopy is to describe advances in instrumentation, methods and theory related to all modes of microscopical imaging, diffraction and spectroscopy in the life and physical sciences.
期刊最新文献
Aberration calculation of microlens array using differential algebraic method. Relativistic EELS scattering cross-sections for microanalysis based on Dirac solutions. Improved precision and accuracy of electron energy-loss spectroscopy quantification via fine structure fitting with constrained optimization. Workflow automation of SEM acquisitions and feature tracking. Enhancing subsurface imaging in ultrasonic atomic force microscopy with optimized contact force.
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