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January 3, 2000Physical Review Letters371 citationsOpen Access

Time-Resolved X-Ray Diffraction from Coherent Phonons during a Laser-Induced Phase Transition

ALA. M. LindenbergIKIlnam KangSJSteven L. Johnson

Key Points

  • To measure coherent acoustic phonon dynamics and structural transitions in laser-excited indium antimonide crystals on picosecond timescales.
  • Utilized time-resolved x-ray diffraction with picosecond temporal resolution to track lattice scattering after laser excitation in InSb crystals.
  • Modeled experimental diffraction frequencies and damping rates using dynamical diffraction theory coupled with analytic laser-induced strain profiles.
  • Lattice strain dynamics matched a 12 ps thermal electron-acoustic phonon coupling time combined with an instantaneous deformation-potential interaction.
  • Excitation above a critical laser fluence initiated a transition into a disordered state driven by large-amplitude, coherent atomic motion.

Abstract

Time-resolved x-ray diffraction with picosecond temporal resolution is used to observe scattering from impulsively generated coherent acoustic phonons in laser-excited InSb crystals. The observed frequencies and damping rates are in agreement with a model based on dynamical diffraction theory coupled to analytic solutions for the laser-induced strain profile. The results are consistent with a 12 ps thermal electron-acoustic phonon coupling time together with an instantaneous component from the deformation-potential interaction. Above a critical laser fluence, we show that the first step in the transition to a disordered state is the excitation of large amplitude, coherent atomic motion.

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Cite This Study

Lindenberg et al. (2000) studied this question.

synapsesocial.com/papers/69ff7f9e6018b8d0892d866ahttps://doi.org/10.1103/physrevlett.84.111
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