具有无球面和轴向色差物镜的透射电子显微镜

IF 2 3区 工程技术 Q2 MICROSCOPY
S.B. Bimurzaev, Z.S. Sautbekova
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引用次数: 0

摘要

考虑了一种无球面和轴向色差的透射电子显微镜(TEM)的基本方案,这是限制电子显微镜分辨率的主要因素。以轴对称静电反射镜(ASEM)为研究对象,其电极为等直径的同轴圆柱体,由有限宽度的间隙隔开。在前人提出的像差概念的基础上,考虑相对论效应,计算了在固定焦距和有限电极间隙下同时消除球面和轴向色差的三电极ASEM族。从各种各样的理论数据中,已经确定了最适合实际使用的无像差透射电镜反射物镜,其几何和电学参数保证了物体和镜场外图像的高斯面形成。给出了这种镜面物镜的几何参数和电学参数与相对论性电子照射光束能量的关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transmission electron microscope with a mirror objective free of spherical and axial chromatic aberrations
The basic scheme of a transmission electron microscope (TEM) with a mirror objective free of spherical and axial chromatic aberrations, which are the main factors limiting the resolution of electron microscopes, is considered. As an objective, an axisymmetric electrostatic mirror (ASEM), the electrodes of which are coaxial cylinders of equal diameter, separated by gaps of finite width, is considered. Based on previously developed aberration concepts, taking into account relativistic effects, the families of three-electrode ASEM are calculated that satisfy the condition of eliminating spherical and axial chromatic aberrations simultaneously at a fixed focal length and a finite width of the interelectrode gaps. From the whole variety of theoretical data, mirrors have been identified that are most suitable for practical use as an aberration-free TEM mirror objective, the geometric and electrical parameters of which ensure the formation of Gaussian planes of the object and the image outside the mirror field. The dependences of the geometric and electrical parameters of such a mirror objective on the energy of the illuminating beam of relativistic electrons are presented.
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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.
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