Microscopic origin of reflection-asymmetric nuclear shapes
Abstract
Background: The presence of nuclear ground states with stable reflection-asymmetric shapes is supported by rich experimental evidence. Theoretical surveys of odd-multipolarity deformations predict the existence of pear-shaped isotopes in several fairly localized regions of the nuclear landscape in the vicinity of near-lying single-particle shells with . Purpose: We analyze the role of isoscalar, isovector, neutron-proton, neutron-neutron, and proton-proton multipole interaction energies in inducing the onset of reflection-asymmetric ground-state deformations. Methods: The calculations are performed in the framework of axial reflection-asymmetric Hartree-Fock-Bogoliubov theory using two Skyrme energy density functionals and density-dependent pairing force. Results: We show that reflection-asymmetric ground-state shapes of atomic nuclei are driven by the odd-multipolarity neutron-proton (or isoscalar) part of the nuclear interaction energy. This result is consistent with the particle-vibration picture, in which the main driver of octupole instability is the isoscalar octupole-octupole interaction giving rise to large polarizability.
Cite
@article{arxiv.2012.06500,
title = {Microscopic origin of reflection-asymmetric nuclear shapes},
author = {Mengzhi Chen and Tong Li and Jacek Dobaczewski and Witold Nazarewicz},
journal= {arXiv preprint arXiv:2012.06500},
year = {2021}
}
Comments
11 pages, 12 figures