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Electron acceleration in laboratory-produced turbulent collisionless shocks

  • F. Fiuza
  • , G. F. Swadling
  • , A. Grassi
  • , H. G. Rinderknecht
  • , D. P. Higginson
  • , D. D. Ryutov
  • , C. Bruulsema
  • , R. P. Drake
  • , S. Funk
  • , S. Glenzer
  • , G. Gregori
  • , C. K. Li
  • , B. B. Pollock
  • , B. A. Remington
  • , J. S. Ross
  • , W. Rozmus
  • , Y. Sakawa
  • , A. Spitkovsky
  • , S. Wilks
  • , H. S. Park
  • High Energy Density Science Division
  • Stanford Linear Accelerator Center
  • Lawrence Livermore National Laboratory
  • University of Rochester Laboratory for Laser Energetics
  • Department of Physics
  • University of Alberta
  • University of Michigan, Ann Arbor
  • Friedrich-Alexander-Universitat Erlangen-Nuremberg
  • Friedrich-Alexander University (FAU) Erlangen-Nürnberg and Universitätsklinikum Erlangen
  • Department of Physics
  • University of Oxford
  • Massachusetts Institute of Technology
  • Osaka University
  • Princeton University

Research output: Contribution to journalArticlepeer-review

108 Citations (Scopus)

Abstract

Astrophysical collisionless shocks are among the most powerful particle accelerators in the Universe. Generated by violent interactions of supersonic plasma flows with the interstellar medium, supernova remnant shocks are observed to amplify magnetic fields1 and accelerate electrons and protons to highly relativistic speeds2–4. In the well-established model of diffusive shock acceleration5, relativistic particles are accelerated by repeated shock crossings. However, this requires a separate mechanism that pre-accelerates particles to enable shock crossing. This is known as the ‘injection problem’, which is particularly relevant for electrons, and remains one of the most important puzzles in shock acceleration6. In most astrophysical shocks, the details of the shock structure cannot be directly resolved, making it challenging to identify the injection mechanism. Here we report results from laser-driven plasma flow experiments, and related simulations, that probe the formation of turbulent collisionless shocks in conditions relevant to young supernova remnants. We show that electrons can be effectively accelerated in a first-order Fermi process by small-scale turbulence produced within the shock transition to relativistic non-thermal energies, helping overcome the injection problem. Our observations provide new insight into electron injection at shocks and open the way for controlled laboratory studies of the physics underlying cosmic accelerators.

Original languageEnglish
Pages (from-to)916-920
Number of pages5
JournalNature Physics
Volume16
Issue number9
DOIs
Publication statusPublished - 1 Sept 2020
Externally publishedYes

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