4.5 Article

Shape transitions in exotic Si and S isotopes and tensor-force-driven Jahn-Teller effect

Journal

PHYSICAL REVIEW C
Volume 86, Issue 5, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevC.86.051301

Keywords

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Funding

  1. MEXT [20244022, 21740204]
  2. NSF [PHY-1068217]
  3. Direct For Mathematical & Physical Scien
  4. Division Of Physics [1068217] Funding Source: National Science Foundation
  5. Grants-in-Aid for Scientific Research [20105003, 21740204, 23244049] Funding Source: KAKEN

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We show how shape transitions in the neutron-rich exotic Si and S isotopes occur in terms of shell-model calculations with a newly constructed Hamiltonian based on V-MU interaction. We first compare the calculated spectroscopic-strength distributions for the proton 0d(5/2,3/2) and 1s(1/2) orbitals with results extracted from a Ca-48(e, e' p) experiment to show the importance of the tensor-force component of the Hamiltonian. Detailed calculations for the excitation energies, B(E2), and two-neutron separation energies for the Si and S isotopes show excellent agreement with experimental data. The potential-energy surface exhibits rapid shape transitions along the isotopic chains towards N = 28 that are different for Si and S. We explain the results in terms of an intuitive picture by involving a Jahn-Teller-type effect that is sensitive to the tensor-force-driven shell evolution. The closed subshell nucleus Si-42 is a particularly good example of how the tensor-force-driven Jahn-Teller mechanism leads to a strong oblate rather than a spherical shape.

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