Fe(,)Fe and the evolution of single neutron energies in the isotones
arXiv:2212.04384 · doi:10.1103/PhysRevC.106.064308
Abstract
A measurement of the Fe(,)Fe reaction at 16 MeV was performed using the Florida State University Super-Enge Split-Pole Spectrograph to determine single-neutron energies for the , , , and orbits. Two states were observed that had not been observed in previous (d, p) measurements. In addition, we made angular momentum transfer, \textit{L}, assignments to four states and changed \textit{L} assignments from previous (, ) measurements for nine more states. The spin-orbit splitting between the and orbits is similar to that in the other isotones and not close to zero as a previous measurement suggested. While the single neutron energy is significantly lower in Fe than in Ti, as predicted by a covariant density functional theory calculation, the single-neutron energy for this orbit in Fe is more than 1 MeV higher than the calculation suggests, although it is only 400 keV above the orbit. The summed spectroscopic strength we observed for the orbit up to the single-neutron separation energy of 9.3 MeV is only 0.3. This is surprising because the orbit is predicted by Togashi \textit{et al.} to be located only 5.5 MeV above the orbit.
16 pages, 6 figures. arXiv admin note: text overlap with arXiv:2106.05781