Suppression of pair beam instabilities in a laboratory analogue of blazar jets

ORAL

Abstract

The laboratory realization of dense, quasi-neutral electron-positron pair beams has been a decades-long pursuit, as a means to test theories of plasma instabilities fundamental to understanding the emission from Gamma-ray bursts and the jets of Active Galactic Nuclei. Experiments become possible for the first time due to a recent breakthrough demonstrating that dense pair beams can be produced using 440 GeV/c ultra-relativistic protons extracted from the Super Proton Synchrotron accelerator at CERN [1]. In the first application of this experimental platform, the stability of the pair beam is studied as it propagates through a metre-length plasma [2]. Theory predicts that non-idealized beam conditions such as finite thermal spread can lead to dramatic stabilization of the beam, which is particularly relevant to astrophysical pair beams where conditions are often far from idealized. We demonstrate experimentally that the growth of pair beam instability can be significantly suppressed when the finite thermal spread of pairs is accounted for and we discuss the implications for observations of blazar gamma-ray spectra.

*This project has received funding from the European Union’s Horizon Europe Research and Innovation programme under Grant Agreement No 101057511 (EURO-LABS).

Publication: [1] C. D. Arrowsmith et al. (2024) "Laboratory realization of relativistic pair-plasma beams" Nat. Commun. 15, 5029.
[2] C. D. Arrowsmith et al. (2023) "Inductively-coupled plasma discharge for use in high energy density science experiments", JINST 18, P04008.

Presenters

  • Charles D Arrowsmith

    • University of Oxford

Authors

  • Charles D Arrowsmith

    • University of Oxford
  • Francesco Miniati

    • University of Oxford
  • Pablo Jaime Bilbao

    • Instituto Superior Tecnico
    • GoLP/IPFN, IST, ULisboa, Portugal
  • Pascal Simon

    • GSI
  • Archie F.A. Bott

    • University of Oxford
  • Stephane Burger

    • CERN
  • Hui Chen

    • LLNL
    • Lawrence Livermore National Laboratory
  • Filipe D Cruz

    • Instituto Superior Tecnico
  • Tristan Davenne

    • Rutherford Appleton Laboratory
  • Anthony Dyson

    • University of Oxford
  • Ilias Efthymiopoulos

    • CERN
  • Dustin H Froula

    • University of Rochester
    • University of Rochester - Laboratory for Laser Energetics
  • Alice Marie Goillot

    • CERN
  • Jon Tomas Gudmundsson

    • University of Iceland
  • Daniel J Haberberger

    • Lab for Laser Energetics
  • Jack WD Halliday

    • Rutherford Appleton Laboratory / STFC
    • University of Oxford
  • Tom Hodge

    • AWE
  • Brian Todd Huffman

    • University of Oxford
  • Sam Iaquinta

    • University of Oxford
  • Subir Sarkar

    • University of Oxford
  • Alexander A Schekochihin

    • University of Oxford
  • Luis O Silva

    • Instituto Superior Tecnico
    • GoLP/IPFN, IST, ULisboa, Portugal
  • Raspberry Simpson

    • Lawrence Livermore National Laboratory
  • Vasiliki Stergiou

    • CERN
  • Raoul M Trines

    • STFC Rutherford Appleton Laboratory
  • Thibault Vieu

    • Max-Planck-Institut für Kernphysik
  • Brian Reville

    • Max-Planck-Institut für Kernphysik
  • Nikolaos Charitonidis

    • CERN
  • Robert Bingham

    • University of Strathclyde
  • Gianluca Gregori

    • University of Oxford