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    Structure and dynamics of open-shell nuclei from spherical coupled-cluster theory

    Francesco Marino1,*, Francesca Bonaiti2,3,†, Sonia Bacca1,4,‡, Gaute Hagen3,5,§, and Gustav R. Jansen6,3,∥

    • *Contact author: frmarino@uni-mainz.de
    • †Contact author: bonaiti@frib.msu.edu
    • ‡Contact author: s.bacca@uni-mainz.de
    • §Contact author: hageng@ornl.gov
    • ∥Contact author: jansengr@ornl.gov

    Phys. Rev. C 112, 014315 – Published 17 July, 2025

    DOI: https://doi.org/10.1103/vbsk-fmqh

    Abstract

    We extend the spherical coupled-cluster ab initio method for open-shell nuclei where two nucleons are removed from a shell subclosure. Following the recent implementation of the two-particle-attached approach [Phys. Rev. C 110, 044306 (2024)], we focus on the two-particle-removed method. Using the equations-of-motion framework, we address both nuclear structure and dipole response functions by coupling coupled-cluster theory with the Lorentz integral transform technique. We perform calculations using chiral interactions, including three-nucleon forces, and estimate many-body uncertainties by comparing different coupled-cluster truncation schemes. We validate our approach by studying ground-state energies, excited states, and electric dipole polarizabilities in the oxygen and calcium isotopic chains. For binding energies and selected low-lying excited states, we achieve an accuracy comparable to that of the established closed-shell coupled-cluster theory and generally agree with experiment. Finally, we underestimate experimental data for electric dipole polarizabilities, particularly in calcium isotopes.

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