Relativistic Hartree-Fock-Bogoliubov model for axially deformed nuclei
arXiv:2202.00482 · doi:10.1103/PhysRevC.105.034329
Abstract
Staring from the Lagrangian density that foots on the meson-propagated picture of nuclear force, the full Hamiltonian, that contains both mean field and pairing contributions, is derived by quantizing the Dirac spinor field in the Bogoliubov quasi-particle space, and the expectation with respect to the Bogoliubov ground state gives the full energy functional. As an extension of the D-RHF model, the degree of freedom associated with the -tensor (-T) coupling is implemented, and incorporating with the Bogoliubov scheme the finite-range Gogny force D1S is utilized as the pairing force. Moreover, qualitative analysis on the nature of the -PV and -T couplings are presented for better understanding their enhancements on the deformation effects. Space convergence related to the spherical DWS base is confirmed for the D-RHFB model by taking light nucleus Mg and mid-heavy one Sm as candidates. Compared to light nuclei, extraordinary more negative energy states are necessitated to keep the expansion completeness on the spherical DWS base for mid-heavy and heavy nuclei, due to the enhanced correlations between the expansion components with large -quantity as indicated by the nature of the -PV and -T couplings. Furthermore, because of the enhanced deformation effects by the -PV and -T couplings, the RHF Lagrangian PKA1 presents deeper bound ground state for Mg than the other selected Lagrangians, in addition to predicting a fairly deep bound local minimum with large oblate deformation.
27 pages, 4 figures and 2 tables
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