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四维超快电子显微镜:新兴技术的新视角。

Four-Dimensional Ultrafast Electron Microscopy: Insights into an Emerging Technique.

机构信息

King Abdullah University of Science and Technology , KAUST Solar Center, Division of Physical Sciences and Engineering, Thuwal 23955-6900, Kingdom of Saudi Arabia.

Department of Chemical Engineering and Materials Science, University of Minnesota , 421 Washington Avenue SE, Minneapolis, Minnesota 55455, United States.

出版信息

ACS Appl Mater Interfaces. 2017 Jan 11;9(1):3-16. doi: 10.1021/acsami.6b12301. Epub 2017 Jan 3.

Abstract

Four-dimensional ultrafast electron microscopy (4D-UEM) is a novel analytical technique that aims to fulfill the long-held dream of researchers to investigate materials at extremely short spatial and temporal resolutions by integrating the excellent spatial resolution of electron microscopes with the temporal resolution of ultrafast femtosecond laser-based spectroscopy. The ingenious use of pulsed photoelectrons to probe surfaces and volumes of materials enables time-resolved snapshots of the dynamics to be captured in a way hitherto impossible by other conventional techniques. The flexibility of 4D-UEM lies in the fact that it can be used in both the scanning (S-UEM) and transmission (UEM) modes depending upon the type of electron microscope involved. While UEM can be employed to monitor elementary structural changes and phase transitions in samples using real-space mapping, diffraction, electron energy-loss spectroscopy, and tomography, S-UEM is well suited to map ultrafast dynamical events on materials surfaces in space and time. This review provides an overview of the unique features that distinguish these techniques and also illustrates the applications of both S-UEM and UEM to a multitude of problems relevant to materials science and chemistry.

摘要

四维超快电子显微镜(4D-UEM)是一种新颖的分析技术,旨在通过将电子显微镜的优异空间分辨率与超快飞秒激光光谱学的时间分辨率相结合,实现研究人员长期以来对极短时空分辨率下材料进行研究的梦想。巧妙地利用脉冲光电子来探测材料的表面和体积,以迄今为止其他传统技术无法实现的方式捕捉动力学的时间分辨快照。4D-UEM 的灵活性在于,它可以根据所涉及的电子显微镜的类型,在扫描(S-UEM)和透射(UEM)模式下使用。虽然 UEM 可以用于使用实空间映射、衍射、电子能量损失光谱和断层扫描来监测样品中的基本结构变化和相转变,但 S-UEM 非常适合在空间和时间上对材料表面的超快动力学事件进行映射。本文综述了区分这些技术的独特特征,并说明了 S-UEM 和 UEM 这两种技术在材料科学和化学相关的众多问题中的应用。

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