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Related Experiment Video

Updated: Jul 14, 2026

Characterizing Far-infrared Laser Emissions and the Measurement of Their Frequencies
09:38

Characterizing Far-infrared Laser Emissions and the Measurement of Their Frequencies

Published on: December 18, 2015

Chirped pulse reflectivity and frequency domain interferometry in laser driven shock experiments.

A Benuzzi-Mounaix1, M Koenig, J M Boudenne

  • 1Laboratoire pour l'Utilisation des Lasers Intenses (LULI), Unité Mixte No. 7605, CNRS, CEA-Ecole Polytechnique, Université Pierre et Marie Curie, 91128 Palaiseau, France.

Physical Review. E, Statistical Physics, Plasmas, Fluids, and Related Interdisciplinary Topics
|April 24, 2002
PubMed
Summary

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This study demonstrates combining frequency domain interferometry and chirped pulse reflectometry for precise shock parameter measurement. These techniques offer a novel approach for analyzing laser-induced shock waves in materials.

Area of Science:

  • Plasma Physics
  • Laser-Matter Interaction
  • Materials Science

Background:

  • Measuring shock parameters in materials under extreme conditions is crucial for understanding dynamic processes.
  • Traditional methods often lack the temporal resolution needed to capture rapid shock phenomena.

Purpose of the Study:

  • To demonstrate the simultaneous application of frequency domain interferometry (FDI) and chirped pulse reflectometry (CPR) for shock parameter measurement.
  • To achieve high temporal resolution in analyzing laser-induced shock waves.

Main Methods:

  • Experiments were conducted at Laboratoire pour l'Utilisation des Lasers Intenses (LULI) using a 550-ps laser pulse.
  • A layered aluminum-fused silica target was used to generate shock waves.
  • A chirped probe beam irradiated the target rear side, with reflected light analyzed by a spectrometer.

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Related Experiment Videos

Last Updated: Jul 14, 2026

Characterizing Far-infrared Laser Emissions and the Measurement of Their Frequencies
09:38

Characterizing Far-infrared Laser Emissions and the Measurement of Their Frequencies

Published on: December 18, 2015

Direct Imaging of Laser-driven Ultrafast Molecular Rotation
10:52

Direct Imaging of Laser-driven Ultrafast Molecular Rotation

Published on: February 4, 2017

Rapid Repetition Rate Fluctuation Measurement of Soliton Crystals in a Microresonator
07:42

Rapid Repetition Rate Fluctuation Measurement of Soliton Crystals in a Microresonator

Published on: December 15, 2021

Main Results:

  • Successfully implemented both FDI and CPR techniques concurrently.
  • Achieved a temporal resolution of approximately 1 picosecond for shock wave analysis.
  • Provided detailed insights into shock propagation dynamics.

Conclusions:

  • The combined FDI and CPR approach is effective for measuring shock parameters with high temporal resolution.
  • This methodology advances the study of laser-induced shock phenomena in materials.