Quenching of single-particle strength inferred from nucleon-removal transfer reactions on C
arXiv:2506.03685 · doi:10.1016/j.physletb.2025.139789
Abstract
The difference in the proton and neutron separation energies () of the weakly bound C ground state is -19.86 MeV, an extreme value. Data from intermediate-energy heavy-ion induced (HI-induced) knockout reactions on nuclei spanning MeV, suggest that the degree to which single-particle strength is quenched, , has a negative correlation with , decreasing from unity around ~MeV to around 0.2 at ~MeV. For the C ground state ( in HI-induced knockout), contrasting results have recently been obtained via the neutron-adding transfer reaction, which reveal a value of , similar to the value observed at modest and more extreme values of with reaction probes other than HI knockout. In order to explore the any potential differences between and processes in transfer reactions at extreme , single-neutron removal transfer reactions on C were performed at 7.1MeV/u in inverse kinematics. The removal of a valence neutron in 2 orbit using both (,) and (,) reactions shows consistent quenching factors and agrees with those from the neutron-adding reaction. The present results, which can be compared with neutron knockout reaction, suggest that correlations, represented by the quenching factor, show limited dependence on neutron-proton asymmetry under the most extreme asymmetry conditions so far achieved in transfer reactions.
8 pages, 4 figures, accepted by Physics Letters B
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