English

First evidence of enhanced low-energy $\gamma$-ray strength from thermal neutron capture data

Nuclear Experiment 2019-04-11 v1

Abstract

The γ\gamma-ray strength function, or average reduced γ\gamma-ray transition probability, is a fundamental input in the calculation of (n,γ)(n,\gamma) cross sections used to simulate the nucleosynthesis of elements heavier than Fe. Since 2004, an enhanced probability of γ\gamma-decay with γ\gamma-ray energies below 24\approx2 - 4 MeV has been measured in reaction data for numerous nuclei. This has been observed as an increase in the γ\gamma-ray strength with decreasing γ\gamma-ray energy, often referred to as the low-energy enhancement or \textit{upbend} in the γ\gamma-ray strength. Nevertheless, the available data confirming this enhancement corresponded solely to charged-particle included reactions and no low-energy enhancement had yet been confirmed from neutron-induced reaction measurements. In this work, we present the first evidence of low-energy γ\gamma-ray strength enhancement from neutron-capture reaction data. Gamma-ray spectra following thermal neutron capture on 58,60^{58,60}Ni have been used to determine the strength for primary and secondary γ\gamma-rays in 59,61^{59,61}Ni, showing an enhancement for γ\gamma-ray energies below 3\approx 3 MeV and 2\approx 2 MeV for 59,61^{59,61}Ni, respectively. For the first time, this enhancement is observed down to γ\gamma-ray energies of 0.2\approx0.2 MeV. Further, available spin-parity assignments have been used to obtain the multipolarity and electromagnetic character of these transitions, showing that this low-energy enhancement is dominated by M1M1 and E2E2 strength, with E1E1 strength also exceeding Standard Lorentzian Model predictions. Finally, large-basis shell-model calculations have been performed, also predicting a strong M1M1 enhancement at low γ\gamma-ray energies.

Keywords

Cite

@article{arxiv.1904.04878,
  title  = {First evidence of enhanced low-energy $\gamma$-ray strength from thermal neutron capture data},
  author = {L. Crespo Campo and R. B. Firestone and B. A. Brown and M. Guttormsen and R. Schwengner},
  journal= {arXiv preprint arXiv:1904.04878},
  year   = {2019}
}

Comments

Article and appendix, 5 figures