论文标题

PY4DSTEM:用于四维扫描传输电子显微镜数据集的多模式分析的软件包

py4DSTEM: a software package for multimodal analysis of four-dimensional scanning transmission electron microscopy datasets

论文作者

Savitzky, Benjamin H, Hughes, Lauren A, Zeltmann, Steven E, Brown, Hamish G, Zhao, Shiteng, Pelz, Philipp M, Barnard, Edward S, Donohue, Jennifer, DaCosta, Luis Rangel, Pekin, Thomas C., Kennedy, Ellis, Janish, Matthew T, Schneider, Matthew M, Herring, Patrick, Gopal, Chirranjeevi, Anapolsky, Abraham, Ercius, Peter, Scott, Mary, Ciston, Jim, Minor, Andrew M, Ophus, Colin

论文摘要

扫描透射电子显微镜(STEM)允许在从微米到原子的长度尺度上进行成像,衍射和光谱。通过使用高速的直接电子检测器,现在可以在每个探针位置记录衍射电子束的完整2D图像,通常是探针位置的2D网格。这些4D-STEM数据集具有丰富的信息,包括局部结构的签名,方向,变形,电磁场和其他依赖样品依赖性特性。但是,提取此信息需要复杂的分析管道,从数据旋转到校准再到分析再到可视化,同时保持了鲁棒性,以防止成像扭曲和伪像。在本文中,我们提出了PY4DSTEM,这是一种用于测量4D STEM数据集的材料属性的分析工具包,并用Python语言编写并使用开源许可证发布。我们详细描述了数据集校准和各种4D-STEM属性测量的算法步骤,并从几个实验数据集提出了结果。我们还实施了一种简单的通用文件格式,适用于使用开源HDF5标准的PY4DSTEM中的电子显微镜数据。我们希望该工具将使研究社区受益,有助于推动电子显微镜中的数据和计算方法的发展标准,并邀请社区为正在进行的,完全开源的项目做出贡献。

Scanning transmission electron microscopy (STEM) allows for imaging, diffraction, and spectroscopy of materials on length scales ranging from microns to atoms. By using a high-speed, direct electron detector, it is now possible to record a full 2D image of the diffracted electron beam at each probe position, typically a 2D grid of probe positions. These 4D-STEM datasets are rich in information, including signatures of the local structure, orientation, deformation, electromagnetic fields and other sample-dependent properties. However, extracting this information requires complex analysis pipelines, from data wrangling to calibration to analysis to visualization, all while maintaining robustness against imaging distortions and artifacts. In this paper, we present py4DSTEM, an analysis toolkit for measuring material properties from 4D-STEM datasets, written in the Python language and released with an open source license. We describe the algorithmic steps for dataset calibration and various 4D-STEM property measurements in detail, and present results from several experimental datasets. We have also implemented a simple and universal file format appropriate for electron microscopy data in py4DSTEM, which uses the open source HDF5 standard. We hope this tool will benefit the research community, helps to move the developing standards for data and computational methods in electron microscopy, and invite the community to contribute to this ongoing, fully open-source project.

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