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arXiv:1904.11555·v1·Nuclear Theory

Exact isovector pairing in a shell-model framework: Role of proton-neutron correlations in isobaric analog states

M. E. Miora · K. D. Launey · D. Kekejian · F. Pan · J. P. Draayer

Abstract

We utilize a nuclear shell model Hamiltonian with only two adjustable parameters to generate, for the first time, exact solutions for pairing correlations for light to medium-mass nuclei, including the challenging proton-neutron pairs, while also identifying the primary physics involved. In addition to single-particle energy and Coulomb potential terms, the shell model Hamiltonian consists of an isovector pairing interaction and an average proton-neutron isoscalar interaction, where the term describes the average interaction between non-paired protons and neutrons. This Hamiltonian is exactly solvable, where, utilizing 3 to 7 single-particle energy levels, we reproduce experimental data for 0 state energies for isotopes with mass through exceptionally well including isotopes from He to Ge. Additionally, we isolate effects due to like-particle and proton-neutron pairing, provide estimates for the total and proton-neutron pairing gaps, and reproduce (neutron) = (proton) irregularity. These results provide a further understanding for the key role of proton-neutron pairing correlations in nuclei, which is especially important for waiting-point nuclei on the rp-path of nucleosynthesis.

Comments: 10 pages, 4 figures

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