Spin-orbit and tensor mean-field effects on spin-orbit splitting including self-consistent core polarizations
Abstract
A new strategy of fitting the coupling constants of the nuclear energy density functional is proposed, which shifts attention from ground-state bulk to single-particle properties. The latter are analyzed in terms of the bare single-particle energies and mass, shape, and spin core-polarization effects. Fit of the isoscalar spin-orbit and both isoscalar and isovector tensor coupling constants directly to the f5/2-f7/2 spin-orbit splittings in Ca40, Ni56, and Ca48 is proposed as a practical realization of this new program. It is shown that this fit requires drastic changes in the isoscalar spin-orbit strength and the tensor coupling constants as compared to the commonly accepted values, but it considerably and systematically improves basic single-particle properties including spin-orbit splittings and magic-gap energies. Impact of these changes on nuclear binding energies is also discussed.
- Publication:
-
Physical Review C
- Pub Date:
- February 2008
- DOI:
- 10.1103/PhysRevC.77.024316
- arXiv:
- arXiv:0801.0924
- Bibcode:
- 2008PhRvC..77b4316Z
- Keywords:
-
- 21.10.Hw;
- 21.10.Pc;
- 21.30.Fe;
- 21.60.Jz;
- Spin parity and isobaric spin;
- Single-particle levels and strength functions;
- Forces in hadronic systems and effective interactions;
- Hartree-Fock and random-phase approximations;
- Nuclear Theory
- E-Print:
- 15 pages, 7 figures, submitted to Physical Review C