Properties of spherical and deformed nuclei using regularized pseudopotentials in nuclear DFT
arXiv:2003.10990 · doi:10.1088/1361-6471/ab9493
Abstract
We developed new parameterizations of local regularized finite-range pseudopotentials up to next-to-next-to-next-to-leading order (N3LO), used as generators of nuclear density functionals. When supplemented with zero-range spin-orbit and density-dependent terms, they provide a correct single-reference description of binding energies and radii of spherical and deformed nuclei. We compared the obtained results to experimental data and discussed benchmarks against the standard well-established Gogny D1S functional.
25 LaTeX pages, 15 figures, Fig. 14 modified
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- Optimized nuclear energy density functionals including long-range pion contributions
- Impact of choices for center-of-mass correction energy on the surface energy of Skyrme energy density functionals