Shape evolutions of Kr with temperature in the covariant density functional theory
arXiv:1608.05483 · doi:10.1088/1674-1137/41/9/094102
Abstract
The rich phenomena of deformations in neutron-deficient krypton isotopes such as the shape evolution with neutron number and the shape coexistence attract the interests of nuclear physicists for decades. It will be interesting to study such shape phenomena using a novel way, i.e., by thermally exciting the nucleus. So in this work, we develop the finite temperature covariant density functional theory for axially deformed nuclei with the treatment of pairing correlations by BCS approach, and apply this approach for the study of shape evolutions in Kr with increasing temperatures. For Kr, with temperature increasing, the nucleus firstly experiences a relatively quick weakening in oblate deformation at temperature MeV, and then changes from oblate to spherical at MeV. For Kr, its global minimum locates at quadroupole deformation and abruptly changes to spherical at MeV. The proton pairing transition occurs at critical temperature 0.6 MeV following the rule where is the proton pairing gap at zero temperature. The signatures of the above pairing transition and shape changes can be found in the curve of the specific heat. The single-particle level evolutions with the temperature are presented.
12 pages, 7 figures
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Cited by in corpus (4)
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- Continuum Skyrme-Hartree-Fock-Bogoliubov theory with Green's function method for odd- nuclei
- Study of single-particle resonant states with Green's function method
- Non-relativistic expansion of single-nucleon Dirac equation: Comparison between Foldy-Wouthuysen transformation and similarity renormalization group