Phonon contributions to ab initio double mass differences of magic nuclei
arXiv:1511.06579 · doi:10.1103/PhysRevC.93.034302
Abstract
Odd-even double mass differences (DMD) of magic nuclei are found within the approach starting from the free interaction with account for particle-phonon coupling (PC) effects. We consider three PC effects: the phonon induced effective interaction, the renormalization of the "ends" due to the -factor corresponding to the pole PC contribution to the nucleon mass operator and the change of the single-particle energies. The perturbation theory in , where is the vertex of the -phonon creation, is used for PC calculations. PC corrections to single-particle energies are found self-consistently with an approximate account for the tadpole diagram. Results for magic Ca, Ni, Sn and Pb nuclei are presented. For lighter part of this set of nuclei, from Ca till Ni, the cases divide approximately in half between those where the PC corrections to DMD values make agreement with the data better and the ones with the opposite result. In the major part of the cases of worsening of description of DMD, a poor applicability of the perturbation theory for the induced interaction is the most probable reason of the phenomenon. For intermediate nuclei, Ni and Sn, there is no sufficiently accurate data on masses of nuclei necessary for finding DMD values. Finally, for heavier nuclei, Sn and Pb, PC corrections always make agreement with the experiment better.
LaTex, 12 pages, 6 figures, submitted to Phys. Rev. C. arXiv admin note: text overlap with arXiv:1206.2182
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