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飞秒电子衍射:金属薄膜中超快结构动力学的直接探测

Femtosecond electron diffraction: direct probe of ultrafast structural dynamics in metal films.

作者信息

Nie Shouhua, Wang Xuan, Li Junjie, Clinite Richard, Cao Jianming

机构信息

Physics Department and National High Magnetic Field Laboratory, Florida State University, Tallahassee, Florida 32310, USA.

出版信息

Microsc Res Tech. 2009 Mar;72(3):131-43. doi: 10.1002/jemt.20666.

Abstract

Femtosecond electron diffraction is a rapidly advancing technique that holds a great promise for studying ultrafast structural dynamics in phase transitions, chemical reactions, and function of biological molecules at the atomic time and length scales. In this paper, we summarize our development of a tabletop femtosecond electron diffractometer. Using a delicate instrument design and careful experimental configurations, we demonstrate the unprecedented capability of detecting submilli-ångström lattice spacing change on a subpicosecond timescale with this new technique. We have conducted an in-depth investigation of ultrafast coherent phonon dynamics induced by an impulsive optical excitation in thin-film metals. By probing both coherent acoustic and random thermal lattice motions simultaneously in real time, we have provided the first and unambiguous experimental evidence that the pressure of hot electrons contributes significantly to the generation of coherent acoustic phonons under nonequilibrium conditions when electrons and phonons are not thermalized. Based on these observations, we also propose an innovative approach to measure the electronic Grüneisen parameter in magnetic materials at and above room temperature, which provides a way to gain new insights into electronic thermal expansion in ferromagnetic transition metals.

摘要

飞秒电子衍射是一项快速发展的技术,在研究相变、化学反应以及生物分子在原子时间和长度尺度上的超快结构动力学方面具有巨大潜力。在本文中,我们总结了我们对台式飞秒电子衍射仪的研发工作。通过精巧的仪器设计和精心的实验配置,我们展示了利用这项新技术在亚皮秒时间尺度上检测亚毫埃晶格间距变化的前所未有的能力。我们对薄膜金属中由脉冲光激发引起的超快相干声子动力学进行了深入研究。通过实时同时探测相干声学晶格运动和随机热晶格运动,我们首次提供了明确的实验证据,表明在电子和声子未达到热平衡的非平衡条件下,热电子压力对相干声学声子的产生有显著贡献。基于这些观察结果,我们还提出了一种在室温及以上测量磁性材料中电子格林爱森参数的创新方法,这为深入了解铁磁过渡金属中的电子热膨胀提供了一条途径。

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