A nucleus-dependent valence-space approach to nuclear structure
Abstract
We present a nucleus-dependent valence-space approach for calculating ground and excited states of nuclei, which generalizes the shell-model in-medium similarity renormalization group to an ensemble reference with fractionally filled orbitals. Because the ensemble is used only as a reference, and not to represent physical states, no symmetry restoration is required. This allows us to capture 3N forces among valence nucleons with a valence-space Hamiltonian specifically targeted to each nucleus of interest. Predicted ground-state energies from carbon through nickel agree with results of other large-space ab initio methods, generally to the 1\% level. In addition, we show that this new approach is required in order to obtain convergence for nuclei in the upper and shells. Finally, we address the / ground-state inversion problem in and . This approach extends the reach of ab initio nuclear structure calculations to essentially all light- and medium-mass nuclei.
Cite
@article{arxiv.1607.03229,
title = {A nucleus-dependent valence-space approach to nuclear structure},
author = {S. R. Stroberg and A. Calci and H. Hergert and J. D. Holt and S. K. Bogner and R. Roth and A. Schwenk},
journal= {arXiv preprint arXiv:1607.03229},
year = {2017}
}
Comments
6 pages, 5 figures