Ab initio calculation of the potential bubble nucleus $^{34}$Si
Abstract
The possibility that an unconventional depletion in the center of the charge density distribution of certain nuclei occurs due to a purely quantum mechanical effect has attracted theoretical and experimental attention in recent years. We report on ab initio self-consistent Green's function calculations of one of such candidates, Si, together with its Z+2 neighbour S. Binding energies, rms radii and density distributions of the two nuclei as well as low-lying spectroscopy of Si, S, Al and P are discussed. The interpretation of one-nucleon removal and addition spectra in terms of the evolution of the underlying shell structure is also provided. The study is repeated using several chiral effective field theory Hamiltonians as a way to test the robustness of the results with respect to input inter-nucleon interactions. The prediction regarding the (non-)existence of the bubble structure in Si varies significantly with the nuclear Hamiltonian used. However, demanding that the experimental charge density distribution and the root mean square radius of S are well reproduced, along with Si and S binding energies, only leaves the NNLO Hamiltonian as a serious candidate to perform this prediction. In this context, a bubble structure, whose fingerprint should be visible in an electron scattering experiment of Si, is predicted. Furthermore, a clear correlation is established between the occurrence of the bubble structure and the weakening of the 1/2-3/2 splitting in the spectrum of Si as compared to S.
Cite
@article{arxiv.1611.08570,
title = {Ab initio calculation of the potential bubble nucleus $^{34}$Si},
author = {T. Duguet and V. Somà and S. Lecluse and C. Barbieri and P. Navrátil},
journal= {arXiv preprint arXiv:1611.08570},
year = {2017}
}
Comments
19 pages, 21 figures