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Towards heavy-mass ab initio nuclear structure: Open-shell Ca, Ni and Sn isotopes from Bogoliubov coupled-cluster theory

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arxiv 2307.15619 v3 pith:LFBIOLV6 submitted 2023-07-28 nucl-th cond-mat.str-elcond-mat.supr-con

classification nucl-thcond-mat.str-elcond-mat.supr-con
keywords initioisotopesnuclearopen-shellstructuretheorybogoliubovcalculations
verification ladder T0 review T1 audit T2 compute T3 formal
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Recent developments in nuclear many-body theory enabled the description of open-shell medium-mass nuclei from first principles by exploiting the spontaneous breaking of symmetries within correlation expansion methods. Once combined with systematically improvable inter-nucleon interactions consistently derived from chiral effective field theory, modern ab initio nuclear structure calculations provide a powerful framework to deliver first-principle predictions accompanied with theoretical uncertainties. In this Letter, controlled ab initio Bogoliubov coupled cluster (BCC) calculations are performed for the first time, targeting the ground-state of all calcium, nickel and tin isotopes up to mass A ~ 180. While showing good agreement with available experimental data, the shell structure evolution in neutron-rich isotopes and the location of the neutron drip-lines are predicted. The BCC approach constitutes a key development towards reliable first-principles simulations of heavy-mass open-shell nuclei.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Taming nuclear size and shape effects in superallowed beta-decay

    nucl-th 2026-05 unverdicted novelty 7.0 of 10

    A combined ab initio and experimental analysis of nuclear form factors reduces uncertainties in superallowed beta-decay rates, enabling a more precise first-row CKM unitarity test.

  2. Lattice calculation of the Sn isotopes near the proton dripline

    nucl-th 2025-09 conditional novelty 7.0 of 10

    First high-fidelity lattice calculations of 99-102Sn reach percent-level agreement with measured binding energies, confirm the N=50 shell closure, and find 99Sn less bound than extrapolations from heavier tin isotopes.

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