Normal ordering of three-nucleon interactions for ab initio calculations of heavy nuclei
Abstract
Three-nucleon (3N) interactions are key for an accurate solution of the nuclear many-body problem. However, fully taking into account 3N forces constitutes a computational challenge and hence approximate treatments are commonly employed. The method of normal ordering has proven to be a powerful tool that allows to systematically include 3N interactions in an efficient way, but traditional normal-ordering frameworks require the representation of 3N interactions in a large single-particle basis, typically necessitating a truncation of 3N matrix elements. While this truncation has only a minor impact for light and medium-mass nuclei, its effects become sizable for heavier systems and hence limit the scope of \textit{ab initio} calculations. In this work, we present a novel normal-ordering framework that allows to circumvent this limitation by performing the normal ordering directly in a Jacobi basis. We discuss in detail the new framework, benchmark it against established results, and present calculations for ground-state energies and charge radii of heavy nuclei, such as Sn and Pb.
Keywords
Cite
@article{arxiv.2211.16262,
title = {Normal ordering of three-nucleon interactions for ab initio calculations of heavy nuclei},
author = {K. Hebeler and V. Durant and J. Hoppe and M. Heinz and A. Schwenk and J. Simonis and A. Tichai},
journal= {arXiv preprint arXiv:2211.16262},
year = {2023}
}
Comments
13 pages, 9 figures, 2 tables, published version