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激光加热金属的结构动力学和超快电子衍射中的相干声子激发与线性热膨胀

Coherent phonon excitation and linear thermal expansion in structural dynamics and ultrafast electron diffraction of laser-heated metals.

作者信息

Tang Jau

机构信息

Research Center for Applied Sciences, Academia Sinica, Nankang, Taipei 11529, Taiwan.

出版信息

J Chem Phys. 2008 Apr 28;128(16):164702. doi: 10.1063/1.2901028.

Abstract

In this study, we examine the ultrafast structural dynamics of metals induced by a femtosecond laser-heating pulse as probed by time-resolved electron diffraction. Using the two-temperature model and the Grüneisen relationship we calculate the electron temperature, phonon temperature, and impulsive force at each atomic site in the slab. Together with the Fermi-Pasta-Ulam anharmonic chain model we calculate changes of bond distance and the peak shift of Bragg spots or Laue rings. A laser-heated thin slab is shown to exhibit "breathing" standing-wave behavior, with a period equal to the round-trip time for sound wave and a wavelength twice the slab thickness. The peak delay time first increases linearly with the thickness (<70 nm for aluminum and <200 nm for gold), but becomes less dependent if further thickness increases. Coherent phonon excitation and propagation from the stressed bulk atoms due to impulsive forces as well as the linear thermal expansion due to lattice temperature jump are shown to contribute to the overall structural changes. Differences between these two mechanisms and their dependence on film thickness and other factors are discussed.

摘要

在本研究中,我们利用时间分辨电子衍射探测飞秒激光加热脉冲诱导的金属超快结构动力学。使用双温度模型和格林爱森关系,我们计算了平板中每个原子位置的电子温度、声子温度和脉冲力。结合费米-帕斯塔-乌拉姆非谐链模型,我们计算了键长的变化以及布拉格斑点或劳厄环的峰位移动。结果表明,激光加热的薄板呈现出“呼吸”驻波行为,其周期等于声波的往返时间,波长为薄板厚度的两倍。峰值延迟时间首先随厚度线性增加(铝小于70纳米,金小于200纳米),但进一步增加厚度时,其依赖性降低。结果表明,由于脉冲力导致的受应力体原子的相干声子激发和传播以及由于晶格温度跃变引起的线性热膨胀都对整体结构变化有贡献。讨论了这两种机制之间的差异及其对薄膜厚度和其他因素的依赖性。

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