Large low-energy strength for Fe within the nuclear shell model
arXiv:1409.3492 · doi:10.1103/PhysRevLett.113.252502
Abstract
A strong enhancement at low -ray energies has recently been discovered in the -ray strength function of Fe. In this work, we have for the first time obtained theoretical decay spectra for states up to MeV in excitation for Fe. We find large values for low -ray energies that provide an explanation for the experimental observations. The role of mixed transitions for the low-energy enhancement is addressed theoretically for the first time, and it is found that they contribute a rather small fraction. Our calculations clearly show that the high- () diagonal terms are most important for the strong low-energy transitions. As such types of transitions are expected for all nuclei, our results indicate that a low-energy enhancement should be present throughout the nuclear chart. This could have far-reaching consequences for our understanding of the strength function at high excitation energies, with profound implications for astrophysical reaction rates.
5 pages, 5 figures
References in corpus (5)
- The r-process of stellar nucleosynthesis: Astrophysics and nuclear physics achievements and mysteries
- Impact of a low-energy enhancement in the gamma-ray strength function on the radiative neutron-capture
- Nuclear level densities and gamma-ray strength functions in 44,45Sc
- Nuclear Level Density and Gamma-Ray Strength Function of 43Sc
- Low-energy magnetic radiation: deviations from GOE