(Translated by https://www.hiragana.jp/)
Phys. Rev. C 110, 024302 (2024) - Shell structure and shape transition in odd-$Z$ superheavy nuclei with proton numbers $Z=117$, 119: Insights from applying deformed relativistic Hartree-Bogoliubov theory in continuum

Shell structure and shape transition in odd-Z superheavy nuclei with proton numbers Z=117, 119: Insights from applying deformed relativistic Hartree-Bogoliubov theory in continuum

Y. X. Zhang (张妍しん), B. R. Liu (刘博しか), K. Y. Zhang (张开もと), and J. M. Yao (尧江あきら)
Phys. Rev. C 110, 024302 – Published 6 August 2024

Abstract

We present a systematic study on the structural properties of odd-Z superheavy nuclei with proton numbers Z=117,119, and neutron numbers N increasing from N=170 to the neutron dripline within the framework of axially deformed relativistic Hartree-Bogoliubov theory in continuum. The results are compared with those of even-even superheavy nuclei with proton numbers Z=118 and 120. We analyze various bulk properties of their ground states, including binding energies, quadrupole deformations, root-mean-square radii, nucleon separation energies, and αあるふぁ-decay energies. The coexistence of competing prolate and oblate or spherical shapes leads to abrupt changes in both quadrupole deformations and charge radii as functions of neutron numbers. Compared to even-even nuclei, the odd-mass ones exhibit a more complicated transition picture, in which the quantum numbers of Kπぱい of the lowest-energy configuration may change with deformation. This may result in the change of angular momentum in the ground-state to ground-state αあるふぁ decay and thus quench the decay rate in odd-mass nuclei. Moreover, our results demonstrate a pronounced proton shell gap at Z=120, instead of Z=114, which is consistent with the predictions of most covariant density functional theories. Besides, large neutron shell gaps are found at N=172 and N=258 in the four isotopic chains, as well as at N=184 in the light two isotopic chains with Z=117 and Z=118, attributed to the nearly degenerate 3d and 4p spin-orbit doublet states due to the presence of bubble structure.

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  • Received 16 May 2024
  • Accepted 19 July 2024

DOI:https://doi.org/10.1103/PhysRevC.110.024302

©2024 American Physical Society

Physics Subject Headings (PhySH)

Nuclear Physics

Authors & Affiliations

Y. X. Zhang (张妍しん)1, B. R. Liu (刘博しか)1, K. Y. Zhang (张开もと)2, and J. M. Yao (尧江あきら)1,*

  • *Contact author: yaojm8@sysu.edu.cn

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Vol. 110, Iss. 2 — August 2024

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