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arXiv:nucl-th/0012001·v1·Nuclear Theory

Shape Transition in Rare-Earth Nuclei in Relativistic Mean Field Theory

B. K. Agrawal🇮🇳 · Tapas Sil🇮🇳 · S. K. Samaddar🇮🇳 · J. N. De🇮🇳

Abstract

A systematic study of the temperature dependence of the shapes and pairing gaps of some isotopes in the rare-earth region is made in the relativistic Hartree-BCS theory. Thermal response to these nuclei is always found to lead to a phase transition from the superfluid to the normal phase at a temperature MeV and a shape transition from prolate to spherical shapes at MeV. These shape transition temperatures are appreciably higher than the corresponding ones calculated in the non-relativistic framework with the pairing plus quadrupole interaction. Study of nuclei with continued addition of neutron pairs for a given isotope shows that with increased ground state deformation, the transition to the spherical shape is delayed in temperature. A strong linear correlation between and the ground state pairing gap is observed; a well- marked linear correlation between and the ground state quadrupole defromation is also seen. The thermal evolution of the hexadecapole deformation is further presented in the paper.

Comments: 14 pages in REVTEX Format and 9 figures Phys. Rev. C (in press)

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