English

Effects of pairing strength on the nuclear structure and double-$\beta$ decay predictions within the mapped interacting boson model

Nuclear Theory 2024-08-16 v2 Nuclear Experiment

Abstract

The low-energy nuclear structure and two-neutrino double-β\beta (2νββ2\nu\beta\beta) decay are studied within the interacting boson model (IBM) that is based on the nuclear energy density functional (EDF). The IBM Hamiltonian describing the initial and final even-even nuclei, and the interacting boson fermion-fermion Hamiltonian producing the intermediate states of the neighboring odd-odd nuclei are determined by the microscopic inputs provided by the self-consistent mean-field (SCMF) calculations employing a relativistic EDF and a separable pairing force. Sensitivities of the low-lying structure and 2νββ2\nu\beta\beta-decay properties to the pairing strength are specifically analyzed. It is shown that the SCMF calculations with decreased and increased pairing strengths lead to quadrupole-quadrupole interaction strengths in the IBM that are, respectively, significantly enhanced and reduced in magnitude. When the increased pairing is adopted, in particular, the energy levels of the excited 0+0^+ states are lowered, and the predicted 2νββ2\nu\beta\beta-decay nuclear matrix elements (NMEs) increase in magnitude systematically. The mapped IBM employing the increased pairing force generates effective NMEs and half-lives that are in a reasonable agreement with the experimental data for the 76^{76}Ge76\to^{76}Se, 82^{82}Se82\to^{82}Kr, and 100^{100}Mo100\to^{100}Ru decays in particular, whereas the calculation with the standard pairing strength is adequate to provide an overall good description of the effective NMEs in agreement with data.

Keywords

Cite

@article{arxiv.2406.02986,
  title  = {Effects of pairing strength on the nuclear structure and double-$\beta$ decay predictions within the mapped interacting boson model},
  author = {Kosuke Nomura},
  journal= {arXiv preprint arXiv:2406.02986},
  year   = {2024}
}

Comments

22 pages, 13 figures, 8 tables