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四维电子能量损失谱

Four-dimensional electron energy-loss spectroscopy.

作者信息

Wu Mei, Shi Ruochen, Qi Ruishi, Li Yuehui, Du Jinlong, Gao Peng

机构信息

International Center for Quantum Materials, Peking University, Beijing 100871, China; Electron Microscopy Laboratory, School of Physics, Peking University, Beijing 100871, China.

Department of Physics, University of California at Berkeley, Berkeley 94720, United States.

出版信息

Ultramicroscopy. 2023 Nov;253:113818. doi: 10.1016/j.ultramic.2023.113818. Epub 2023 Jul 28.

Abstract

Recent advances in scanning transmission electron microscopy have enabled atomic-scale focused, coherent, and monochromatic electron probes, achieving nanoscale spatial resolution, meV energy resolution, sufficient momentum resolution, and a wide energy detection range in electron energy-loss spectroscopy (EELS). A four-dimensional EELS (4D-EELS) dataset can be recorded with a slot aperture selecting the specific momentum direction in the diffraction plane and the beam scanning in two spatial dimensions. In this paper, the basic principle of the 4D-EELS technique and a few examples of its application are presented. In addition to parallelly acquired dispersion with energy down to a lattice vibration scale, it can map the real space variation of any EELS spectrum features with a specific momentum transfer and energy loss to study various locally inhomogeneous scattering processes. Furthermore, simple mathematical combinations associating the spectra at different momenta are feasible from the 4D dataset, e.g., the efficient acquisition of a reliable electron magnetic circular dichroism (EMCD) signal is demonstrated. This 4D-EELS technique provides new opportunities to probe the local dispersion and related physical properties at the nanoscale.

摘要

扫描透射电子显微镜的最新进展已实现了原子尺度聚焦、相干且单色的电子探针,在电子能量损失谱(EELS)中达到了纳米级空间分辨率、毫电子伏特能量分辨率、足够的动量分辨率以及宽能量检测范围。通过在衍射平面中使用狭缝孔径选择特定动量方向并在两个空间维度上进行束扫描,可以记录四维EELS(4D-EELS)数据集。本文介绍了4D-EELS技术的基本原理及其一些应用示例。除了并行获取低至晶格振动尺度的能量色散外,它还可以绘制具有特定动量转移和能量损失的任何EELS谱特征的实空间变化,以研究各种局部不均匀散射过程。此外,从4D数据集中对不同动量下的光谱进行简单数学组合是可行的,例如,展示了可靠的电子磁圆二色性(EMCD)信号的有效获取。这种4D-EELS技术为在纳米尺度探测局部色散和相关物理性质提供了新机会。

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