The axially-deformed relativistic quasiparticle random phase approximation based on point-coupling interactions
A. Ravli\'c, T. Nik\v{s}i\'c, Y. F. Niu, P. Ring, N. Paar

TL;DR
This paper develops a new axially-deformed relativistic quasiparticle RPA framework based on point-coupling interactions to study deformation effects on nuclear spin-isospin excitations, enabling faster and more reliable analysis of collective modes.
Contribution
It introduces a novel axially-deformed pnRQRPA based on relativistic point-coupling EDFs, extending the study of deformation effects to spin-isospin excitations in nuclei.
Findings
Deformation causes significant fragmentation of Gamow-Teller strength.
Fragmentation varies with nuclear shape, affecting excitation distributions.
Fermi strength remains nearly shape-independent.
Abstract
Collective nuclear excitations, like giant resonances, are sensitive to nuclear deformation, as evidenced by alterations in their excitation energies and transition strength distributions. A common theoretical framework to study these collective modes, the random-phase approximation (RPA), has to deal with large dimensions spanned by all possible particle-hole configurations satisfying certain symmetries. This work aims to establish a new theoretical framework to study the impact of deformation on spin-isospin excitations, that can provide fast and reliable solutions of the RPA equations. The nuclear ground state is determined with the axially-deformed relativistic Hartree-Bogoliubov (RHB) model based on relativistic point-coupling energy density functionals (EDFs). To study the excitations in the charge-exchange channel, an axially-deformed proton-neutron relativistic quasiparticle RPA…
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Taxonomy
TopicsNuclear physics research studies
