- By:
- Jansen, Gustav R; Bonaiti, Francesca ; Hagen, Gaute ; Papenbrock, Thomas F; Marino, Francesco; Demol, Pepijn; Bacca, Sonia; Duguet, T.; Tichai, Alexander
- Journal Name:
- Physical Review C
- Page Number:
- 44301
- Volume:
- 113
- Issue Number:
- 4
- Publication Date:
- August 11, 2026
- View DOI Listing:
- https://doi.org/10.1103/p297-y8vq
Abstract
Coupled-cluster theory is a powerful tool for first-principles calculations of atomic nuclei, enabling accurate predictions of nuclear observables across the Segrè chart. While coupled-cluster computations are especially efficient at shell closures, extensions have been developed to tackle open-shell nuclei, by exploiting the equation-of-motion method or by expanding the coupled-cluster wave function on top of a symmetry-breaking (either deformed or superfluid) reference state. In this study, we provide a comprehensive comparison of these different formulations applied to the calcium and nickel isotopes using nuclear two- and three-body interactions from chiral effective field theory. Based on ground-state energies, two-neutron separation energies, and two-neutron shell gaps, different coupled-cluster computations—based on symmetry-broken reference states and equation-of-motion techniques—offer consistent descriptions of bulk properties across medium-mass isotopic chains.