Investigation of the D-T γ-to-neutron and D-<sup>3</sup>He γ-to-proton branching ratios at ICF facilities
ORAL
Abstract
The deuterium-tritium (D-T) γ-to-neutron branching ratio (3H(d,γ)5He/3H(d,n)4He) has been previously measured in several different experimental platforms including beam-target based, inertial confinement fusion (ICF), and magnetic confinement fusion (MCF) plasmas. A unique feature accessible to ICF plasma-based measurements, in contrast to accelerators and magnetic confinement, is the ability to probe lower center of mass energies. ICF based measurements also enable temporal separation of the 𝛾 signal from neutron induced backgrounds which can be problematic in other platforms. 𝛾 detectors at ICF facilities typically utilize the Cherenkov mechanism to attain fast detector response times, a requisite for the inherently short duration of ICF implosions. Recent measurements of the branching ratio exploit the better known 12C neutron inelastic scattering cross section (12C(n,n’𝛾)12C), in puck-based experiments, to absolutely calibrate the 𝛾 detectors. [1-2] A recent MCF based experiment utilizes scintillator-based detectors, with 𝛾 energy resolution, to determine both the shape of the gamma spectrum resulting from D-T fusion as well as the branching ratio. [3-4] There however remains discrepancies in the obtained results across the different experiments. In this work, recent experiments to measure the D-T γ-to-neutron and D-3He 𝛾-to-proton branching ratios, performed at ICF facilities, will be discussed along with preliminary results.
*This work was performed under the auspices of the U.S. Department of Energy by Lawrence Livermore National Laboratory under Contract DE-AC52-07NA27344.LLNL-ABS-2008968
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Publication:[1] J. Jeet et al., Inertial-confinement fusion-plasma-based cross-calibration of the deuterium-tritium γ-to-neutron branching ratio, Phys. Rev. C 104, 054611 (2021). [2] Z. L. Mohamed et al., γ-to-neutron branching ratio for deuterium-tritium fusion determined using high-energy- density plasmas and a fused silica Cherenkov detector, Phys. Rev. C 107, 014606 (2023). [3] M. Rebai et al., First direct measurement of the spectrum emitted by the 3H(2H,γ)5He reaction and assessment of the relative yield γ1 to γ0, Phys. Rev. C 110, 014625 (2024). [4] A. Molin et al., Measurement of the Gamma-Ray-to-Neutron Branching Ratio for the Deuterium-Tritium Reaction in Magnetic Confinement Fusion Plasmas, Phys. Rev. Lett. 133, 055102 (2024).
Presenters
Justin Jeet
Lawrence Livermore National Laboratory
Authors
Justin Jeet
Lawrence Livermore National Laboratory
Mark J Eckart
Lawrence Livermore Natl Lab
Alex B Zylstra
Lawrence Livermore National Laboratory
Michael S Rubery
Lawrence Livermore National Laboratory
Alastair S Moore
Lawrence Livermore National Laboratory
David Schlossberg
Lawrence Livermore National Laboratory
Lawrence Livermore National Lab
Shaun M Kerr
Lawrence Livermore National Laboratory
Yongho Kim
Los Alamos National Laboratory (LANL)
Kevin D Meaney
Los Alamos National Laboratory
Zaarah Mohamed
Los Alamos National Laboratory (LANL)
Chad J Forrest
University of Rochester
Laboratory for Laser Energetics (LLE)
Nicholas Pelepchan
Laboratory for Laser Energetics, University of Rochester