Relativistic approach to nuclear spin-isospin excitations including quasiparticle-vibration coupling
Abstract
The spin-isospin response of stable and exotic nuclei is investigated in the framework of the proton-neutron relativistic quasiparticle time-blocking approximation (pn-RQTBA). Based on the Covariant Density Functional Theory, this method extends the proton-neutron Relativistic Quasiparticle Random-Phase Approximation (pn-RQRPA) by including the coupling between single quasiparticles and collective nuclear vibrations. In the charge-exchange channel, this coupling generates a time-dependent effective interaction between proton and neutron quasiparticles. The particle-hole component of this interaction adds to the static pion and rho-meson exchange, while the particle-particle component provides a microscopic and consistent proton-neutron pairing interaction. We find that such dynamical effects induce fragmentation and spreading of the Gamow-Teller transition strength which are important for a better agreement with the experimental measurements and for an accurate description of -decay rates. The new developments include the coupling of single nucleons to isospin-flip vibrations in doubly-magic nuclei. We find that these phonons can have a non-negligible effect on -decay half-lives and "quenching" of the strength.
Cite
@article{arxiv.1702.00044,
title = {Relativistic approach to nuclear spin-isospin excitations including quasiparticle-vibration coupling},
author = {Caroline Robin and Elena Litvinova},
journal= {arXiv preprint arXiv:1702.00044},
year = {2017}
}
Comments
9 pages, 6 figures, contribution to the proceedings of "The 26th International Nuclear Physics Conference" (INPC2016) held in Adelaide, Australia, September 11-16, 2016. To appear in Proceedings of Science