金属薄膜的超快激光诱导超声表征

Hao Zhang, A. Antoncecchi, S. Edward, P. Planken, S. Witte
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摘要

入射到金属上的超快激光脉冲可以产生频率在千兆赫到太赫兹范围内的相干声子波包[1,2]。使用这种超快激光诱导的超声脉冲进行材料表征提供了任何其他方法无法达到的频率范围。我们的目标是通过超快激光脉冲产生和探测超声波来研究材料的光学和声学特性。为了产生高频声波,同时优化探测效果,我们使用了一对400纳米波长的40秒飞秒交叉泵浦脉冲,将干涉条纹投射到金属薄膜表面。由于超声波仅在干涉最大值时产生,因此这种方法产生空间周期性声脉冲阵列。声脉冲通过薄膜传播并在背面反射。延迟探针脉冲(30fs, 800nm)通过检测每次声回波返回表面时光学响应的变化来检测返回的声回波。由于产生了周期性的超声波阵列,我们可以通过这种“声光栅”来检测探测光束的一阶衍射。通过在独立的薄金属膜中进行这些测量,消除了衬底界面的影响,并且声衰减仅由金属中的传播引起,从而在没有外部因素的情况下提供了金属参数的干净测量。
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Characterization of Thin Metal Films by Ultrafast Laser Induced Ultrasound
Ultrafast laser pulses incident on metals can lead to the generation of coherent phonon wave packets with frequencies in the gigahertz to terahertz range [1,2]. Material characterization using such ultrafast laser-induced ultrasound pulses provides access to a frequency range that is inaccessible by any other means. Our objective is to study the optical and acoustic properties of materials by generating and detecting ultrasound waves with ultrafast laser pulses. To generate high frequency acoustic waves in a way that also optimizes their detection, we use a pair of crossed 40 fs femtosecond pump pulses at 400 nm wavelength to project interference fringes on the surface of thin metal films. Because ultrasound is only generated in the interference maxima, this approach produces a spatially periodic array of acoustic pulses. The acoustic pulses propagate through the film and are reflected at the back surface. A delayed probe pulse (30 fs, 800 nm) then detects the returning acoustic echo by detecting a change in the optical response that occurs every time an acoustic echo returns to the surface. Because a periodic array of ultrasound waves was produced, we can detect the first order diffraction of the probe beam by this ‘acoustic grating’. By performing these measurements in thin free-standing metal membranes, the influence of substrate interfaces is eliminated, and acoustic attenuation is only caused by propagation in the metal, providing clean measurements of the metal parameters without external factors.
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