English

On the stability of super-heavy nuclei

Nuclear Theory 2018-03-28 v1

Abstract

The potential-energy surfaces of an extended set of heavy and super-heavy even-even nuclei with 92Z12692 \le Z \le 126 and isospins 40NZ7440 \le N-Z \le 74 are evaluated within the recently developed Fourier shape parametrization. Ground-state and decay properties are studied for 324 different even-even isotopes in a four-dimensional deformation space, defined by non-axiality, quadrupole, octupole, and hexadecapole degrees of freedom. Nuclear deformation energies are evaluated in the framework of the macroscopic-microscopic approach, with the Lublin-Strasbourg-Drop model and a Yukawa-folded mean-field potential. The evolution of the ground-state equilibrium shape (and possible isomeric, metastable states) is studied as a function of ZZ and NN. Alpha-decay QQ-values and half-lives, as well as fission-barrier heights, are deduced. In order to understand the transition from asymmetric to symmetric fission along the Fm isotopic chain, the properties of all identified fission paths are investigated. Good agreement is found with experimental data wherever available. New interesting features about the population of different fission modes for nuclei beyond Fm are predicted.

Keywords

Cite

@article{arxiv.1801.05969,
  title  = {On the stability of super-heavy nuclei},
  author = {K. Pomorski and B. Nerlo-Pomorska and J. Bartel and C. Schmitt},
  journal= {arXiv preprint arXiv:1801.05969},
  year   = {2018}
}

Comments

17 pages, 16 figures