Increased ion temperature and neutron yield observed in magnetized indirectly driven D_{2}-filled capsule implosions on the national ignition facility
File(s)Moody_PhysRevLett.129.195002.pdf (634.45 KB)
Published version
Author(s)
Type
Journal Article
Abstract
The application of an external 26 Tesla axial magnetic field to a D_{2} gas-filled capsule indirectly driven on the National Ignition Facility is observed to increase the ion temperature by 40% and the neutron yield by a factor of 3.2 in a hot spot with areal density and temperature approaching what is required for fusion ignition [1]. The improvements are determined from energy spectral measurements of the 2.45 MeV neutrons from the D(d,n)^{3}He reaction, and the compressed central core B field is estimated to be ∼4.9 kT using the 14.1 MeV secondary neutrons from the D(T,n)^{4}He reactions. The experiments use a 30 kV pulsed-power system to deliver a ∼3 μs current pulse to a solenoidal coil wrapped around a novel high-electrical-resistivity AuTa_{4} hohlraum. Radiation magnetohydrodynamic simulations are consistent with the experiment.
Date Issued
2022-11-04
Date Acceptance
2022-09-26
Citation
Physical Review Letters, 2022, 129 (19)
ISSN
0031-9007
Publisher
American Physical Society
Journal / Book Title
Physical Review Letters
Volume
129
Issue
19
Copyright Statement
© 2022 American Physical Society
Identifier
https://www.ncbi.nlm.nih.gov/pubmed/36399755
Publication Status
Published
Coverage Spatial
United States
Article Number
ARTN 195002