Implementation of the foil-on-hohlraum technique for the magnetic recoil spectrometer for time-resolved neutron measurements at the National Ignition Facility

  • C. E. Parker
  • , J. A. Frenje
  • , M. Gatu Johnson
  • , D. J. Schlossberg
  • , H. G. Reynolds
  • , L. Berzak Hopkins
  • , R. Bionta
  • , D. T. Casey
  • , S. J. Felker
  • , T. J. Hilsabeck
  • , J. D. Kilkenny
  • , C. K. Li
  • , A. J. Mackinnon
  • , H. Robey
  • , M. E. Schoff
  • , F. H. Séguin
  • , C. W. Wink
  • , R. D. Petrasso

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

The next-generation Magnetic Recoil Spectrometer, called MRSt, will provide time-resolved measurements of the deuterium-tritium-neutron spectrum from inertial confinement fusion implosions at the National Ignition Facility. These measurements will provide critical information about the time evolution of the fuel assembly, hot-spot formation, and nuclear burn. The absolute neutron spectrum in the energy range of 12-16 MeV will be measured with high accuracy (∼5%), unprecedented energy resolution (∼100 keV) and, for the first time ever, time resolution (∼20 ps). Crucial to the design of the system is a CD conversion foil for the production of recoil deuterons positioned as close to the implosion as possible. The foil-on-hohlraum technique has been demonstrated by placing a 1-mm-diameter, 40-μm-thick CD foil on the hohlraum diagnostic band along the line-of-sight of the current time-integrated MRS system, which measured the recoil deuterons. In addition to providing validation of the foil-on-hohlraum technique for the MRSt design, substantial improvement of the MRS energy resolution has been demonstrated.

Original languageEnglish (US)
Article number113508
JournalReview of Scientific Instruments
Volume89
Issue number11
DOIs
StatePublished - Nov 1 2018
Externally publishedYes

All Science Journal Classification (ASJC) codes

  • Instrumentation

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