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近期高压电子显微镜研究中的主题。

Topics in recent studies with high-voltage electron microscopes.

作者信息

Mori Hirotaro

机构信息

Research Center for Ultrahigh Voltage Electron Microscopy, Osaka University, 7-1 Mihogaoka, Ibaraki, Osaka 567-0047, Japan.

出版信息

J Electron Microsc (Tokyo). 2011;60 Suppl 1:S189-97. doi: 10.1093/jmicro/dfr050.

Abstract

In this article, topics in recent studies with high-voltage electron microscopes (HVEMs) are reviewed. High-voltage electron microscopy possesses a number of advantages that cannot be afforded by conventional electron microscopy, thus providing a unique microscopy technique in both materials science and biological science. One of these advantages is the capability of continuously observing phenomena using a variety of electron microscopy techniques simultaneously with the introduction of the displacement of atoms from lattice points. This has enabled in-depth studies on such fundamental subjects as the crystalline-to-amorphous-to-crystalline transition, the motion properties of point defects and the one-dimensional diffusion of dislocation loops. Electron tomography studies using HVEMs take advantage of the large observable thickness of a specimen. In addition, by combining different advantages, a number of advanced applications in materials science have been carried out, including analyses of the atomic structure of a reduction-induced reconstructed surface and the atomic mechanism behind the self-catalytic vapor-liquid-solid growth of an oxide nanowire. As long as excellent and invaluable studies that cannot be carried out without HVEMs appear in succession, it is necessary to make the utmost efforts to improve these microscopes.

摘要

本文对近期使用高压电子显微镜(HVEMs)的研究课题进行了综述。高压电子显微镜具有许多传统电子显微镜所没有的优势,从而在材料科学和生物科学领域提供了一种独特的显微镜技术。其中一个优势是能够在原子从晶格点位移的情况下,同时使用多种电子显微镜技术连续观察现象。这使得对诸如晶态-非晶态-晶态转变、点缺陷的运动特性以及位错环的一维扩散等基础课题进行深入研究成为可能。使用HVEMs的电子断层扫描研究利用了样品可观的大厚度。此外,通过结合不同的优势,在材料科学领域开展了许多先进的应用,包括对还原诱导重构表面的原子结构分析以及氧化物纳米线自催化气-液-固生长背后的原子机制分析。只要不断出现没有HVEMs就无法进行的优秀且极有价值的研究,就有必要尽最大努力改进这些显微镜。

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