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Approaches for ultrafast imaging of transient materials processes in the transmission electron microscope

机译:透射电子显微镜中瞬态材料过程的超快速成像方法

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The growing field of ultrafast materials science, aimed at exploring short-lived transient processes in materials on the microsecond to femtosecond timescales, has spawned the development of time-resolved, in situ techniques in electron microscopy capable of capturing these events. This article gives a brief overview of two principal approaches that have emerged in the past decade: the stroboscopic ultrafast electron microscope and the nanosecond-time-resolved single-shot instrument. The high time resolution is garnered through the use of advanced pulsed laser systems and a pump-probe experimental platforms using laser-driven photoemission processes to generate time-correlated electron probe pulses synchronized with laser-driven events in the specimen. Each technique has its advantages and limitations and thus is complementary in terms of the materials systems and processes that they can investigate. The stroboscopic approach can achieve atomic resolution and sub-picosecond time resolution for capturing transient events, though it is limited to highly repeatable (>10~6 cycles) materials processes, e.g., optically driven electronic phase transitions that must reset to the material's ground state within the repetition rate of the femtosecond laser. The single-shot approach can explore irreversible events in materials, but the spatial resolution is limited by electron source brightness and electron-electron interactions at nanosecond temporal resolutions and higher. The first part of the article will explain basic operating principles of the stroboscopic approach and briefly review recent applications of this technique. As the authors have pursued the development of the single-shot approach, the latter part of the review discusses its instrumentation design in detail and presents examples of materials science studies and the near-term instrumentation developments of this technique.
机译:超快材料科学的发展领域旨在探索从微秒到飞秒的时间尺度的材料中短暂的瞬态过程,催生了能够捕获这些事件的电子显微镜时间分辨原位技术的发展。本文简要概述了过去十年中出现的两种主要方法:频闪超快电子显微镜和纳秒级分辨单发仪器。通过使用先进的脉冲激光系统和泵浦探针实验平台来获得高时间分辨率,该平台使用激光驱动的光发射过程来生成与样本中激光驱动事件同步的时间相关的电子探针脉冲。每种技术都有其优点和局限性,因此在它们可以研究的材料系统和过程方面是互补的。频闪方法可以实现捕获瞬态事件的原子分辨率和亚皮秒时间分辨率,尽管它仅限于高度可重复的(> 10〜6个循环)材料过程,例如,光驱动电子相变必须重置为材料的基态在飞秒激光的重复率范围内。单发方法可以探索材料中不可逆的事件,但是空间分辨率受到纳秒级或更高分辨率下电子源亮度和电子-电子相互作用的限制。本文的第一部分将解释频闪方法的基本操作原理,并简要回顾该技术的最新应用。随着作者追求单次方法的发展,本综述的后半部分详细讨论了其仪器设计,并提供了材料科学研究的实例以及该技术的近期仪器开发。

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