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Micron-scale phenomena observed in a turbulent laser-produced plasma

Author

Listed:
  • G. Rigon

    (LULI, CNRS, CEA, École Polytechnique, UPMC, Univ Paris 06: Sorbonne Universités, Institut Polytechnique de Paris)

  • B. Albertazzi

    (LULI, CNRS, CEA, École Polytechnique, UPMC, Univ Paris 06: Sorbonne Universités, Institut Polytechnique de Paris)

  • T. Pikuz

    (Institute for Open and Transdisciplinary Research Initiative, Osaka University
    Joint Institute for High Temperatures RAS)

  • P. Mabey

    (LULI, CNRS, CEA, École Polytechnique, UPMC, Univ Paris 06: Sorbonne Universités, Institut Polytechnique de Paris)

  • V. Bouffetier

    (Université de Bordeaux-CNRS-CEA, CELIA, UMR 5107)

  • N. Ozaki

    (Graduate School of Engineering, Osaka University
    Institute of Laser Engineering, Osaka University)

  • T. Vinci

    (LULI, CNRS, CEA, École Polytechnique, UPMC, Univ Paris 06: Sorbonne Universités, Institut Polytechnique de Paris)

  • F. Barbato

    (Université de Bordeaux-CNRS-CEA, CELIA, UMR 5107)

  • E. Falize

    (CEA-DAM, DIF)

  • Y. Inubushi

    (Japan Synchrotron Radiation Research Institute
    RIKEN SPring-8 Center)

  • N. Kamimura

    (Graduate School of Engineering, Osaka University)

  • K. Katagiri

    (Graduate School of Engineering, Osaka University)

  • S. Makarov

    (Joint Institute for High Temperatures RAS
    Department of Physics of accelerators and radiation medicine, Faculty of Physics, Lomonosov Moscow State University)

  • M. J.-E. Manuel

    (General Atomics, Inertial Fusion Technologies)

  • K. Miyanishi

    (RIKEN SPring-8 Center)

  • S. Pikuz

    (Joint Institute for High Temperatures RAS
    National Research Nuclear University ‘MEPhi’)

  • O. Poujade

    (CEA-DAM, DIF
    Université Paris-Saclay, CEA, LMCE)

  • K. Sueda

    (RIKEN SPring-8 Center)

  • T. Togashi

    (Japan Synchrotron Radiation Research Institute
    RIKEN SPring-8 Center)

  • Y. Umeda

    (Graduate School of Engineering, Osaka University
    Institute for Planetary Materials, Okayama University)

  • M. Yabashi

    (Japan Synchrotron Radiation Research Institute
    RIKEN SPring-8 Center)

  • T. Yabuuchi

    (Japan Synchrotron Radiation Research Institute
    RIKEN SPring-8 Center)

  • G. Gregori

    (Department of Physics, University of Oxford)

  • R. Kodama

    (Graduate School of Engineering, Osaka University)

  • A. Casner

    (Université de Bordeaux-CNRS-CEA, CELIA, UMR 5107
    CEA-CESTA, 15 avenue des Sablières)

  • M. Koenig

    (LULI, CNRS, CEA, École Polytechnique, UPMC, Univ Paris 06: Sorbonne Universités, Institut Polytechnique de Paris
    Graduate School of Engineering, Osaka University)

Abstract

Turbulence is ubiquitous in the universe and in fluid dynamics. It influences a wide range of high energy density systems, from inertial confinement fusion to astrophysical-object evolution. Understanding this phenomenon is crucial, however, due to limitations in experimental and numerical methods in plasma systems, a complete description of the turbulent spectrum is still lacking. Here, we present the measurement of a turbulent spectrum down to micron scale in a laser-plasma experiment. We use an experimental platform, which couples a high power optical laser, an x-ray free-electron laser and a lithium fluoride crystal, to study the dynamics of a plasma flow with micrometric resolution (~1μm) over a large field of view (>1 mm2). After the evolution of a Rayleigh–Taylor unstable system, we obtain spectra, which are overall consistent with existing turbulent theory, but present unexpected features. This work paves the way towards a better understanding of numerous systems, as it allows the direct comparison of experimental results, theory and numerical simulations.

Suggested Citation

  • G. Rigon & B. Albertazzi & T. Pikuz & P. Mabey & V. Bouffetier & N. Ozaki & T. Vinci & F. Barbato & E. Falize & Y. Inubushi & N. Kamimura & K. Katagiri & S. Makarov & M. J.-E. Manuel & K. Miyanishi & , 2021. "Micron-scale phenomena observed in a turbulent laser-produced plasma," Nature Communications, Nature, vol. 12(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:12:y:2021:i:1:d:10.1038_s41467-021-22891-w
    DOI: 10.1038/s41467-021-22891-w
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