Proton spectra from $^3$He+T and $^3$He+$^3$He fusion at low center-of-mass energy

ORAL

Abstract

Proton spectra from the $^3$He+$^3$He and T+$^3$He have been studied at the OMEGA laser facility using inertially-confined plasmas. These high-temperature plasmas are created using shock-driven `exploding pusher' implosions. The advantage of using these plasmas is that they better mimic astrophysical systems than cold-target accelerator experiments, and are suited to unique low-energy measurements. The measured proton spectra disagree substantially with R-matrix predictions made using data from the mirror T+T reaction. R-matrix fits to the spectra suggest significant uncertainty in the proton energy distribution [A.B. Zylstra et al., Phys. Rev. Lett. 119, 222701 (2017)]. This reaction is directly relevant to the solar proton-proton chain, and these low-energy spectra may aid interpretation of low-statistics cross section measurements in accelerator experiments.

*This work was partially supported by the US DOE, NLUF, LLE, and GA

Presenters

  • Alex Zylstra

    • Los Alamos National Laboratory

Authors

  • Alex Zylstra

    • Los Alamos National Laboratory
  • Johan Frenje

    • Massachusetts Inst of Tech-MIT
  • Maria Gatu Johnson

    • Massachusetts Inst of Tech-MIT
  • Gerald M Hale

    • Los Alamos Natl Lab
  • Carl R. Brune

    • Ohio Univ
    • Ohio University
    • Ohio Univiversity
  • Andrew Bacher

    • Indiana Univ - Bloomington
  • Daniel Casey

    • Lawrence Livermore Natl Lab
    • Lawrence Livermore National Laboratory
  • Chikang Li

    • Massachusetts Inst of Tech-MIT
  • Dennis Paul McNabb

    • Lawrence Livermore Natl Lab
  • Mark W Paris

    • Los Alamos Natl Lab
  • Richard Petrasso

    • Massachusetts Inst of Tech-MIT
  • Thomas C. Sangster

    • Univ of Rochester
    • Laboratory for Laser Energetics
  • Daniel Sayre

    • Lawrence Livermore Natl Lab
    • Lawrence Livermore National Laboratory
  • Fredrick Seguin

    • Massachusetts Inst of Tech-MIT