Experimental Evidence of a Variant Neutron Spectrum from the T(t,2n)α Reaction at Center-of-Mass Energies in the Range of 16-50 keV

Full calculations of six-nucleon reactions with a three-body final state have been elusive and a long-standing issue. We present neutron spectra from the T(t,2n)α (TT) reaction measured in inertial confinement fusion experiments at the OMEGA laser facility at ion temperatures from 4 to 18 keV, corre...

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Veröffentlicht in:Physical review letters 2018-07, Vol.121 (4), p.042501-042501, Article 042501
Hauptverfasser: Gatu Johnson, M, Forrest, C J, Sayre, D B, Bacher, A, Bourgade, J-L, Brune, C R, Caggiano, J A, Casey, D T, Frenje, J A, Glebov, V Yu, Hale, G M, Hatarik, R, Herrmann, H W, Janezic, R, Kim, Y H, Knauer, J P, Landoas, O, McNabb, D P, Paris, M W, Petrasso, R D, Pino, J E, Quaglioni, S, Rosse, B, Sanchez, J, Sangster, T C, Sio, H, Shmayda, W, Stoeckl, C, Thompson, I, Zylstra, A B
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Sprache:eng
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Zusammenfassung:Full calculations of six-nucleon reactions with a three-body final state have been elusive and a long-standing issue. We present neutron spectra from the T(t,2n)α (TT) reaction measured in inertial confinement fusion experiments at the OMEGA laser facility at ion temperatures from 4 to 18 keV, corresponding to center-of-mass energies (E_{c.m.}) from 16 to 50 keV. A clear difference in the shape of the TT-neutron spectrum is observed between the two E_{c.m.}, with the ^{5}He ground state resonant peak at 8.6 MeV being significantly stronger at the higher than at the lower energy. The data provide the first conclusive evidence of a variant TT-neutron spectrum in this E_{c.m.} range. In contrast to earlier available data, this indicates a reaction mechanism that must involve resonances and/or higher angular momenta than L=0. This finding provides an important experimental constraint on theoretical efforts that explore this and complementary six-nucleon systems, such as the solar ^{3}He(^{3}He,2p)α reaction.
ISSN:0031-9007
1079-7114
DOI:10.1103/PhysRevLett.121.042501