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How to renormalize coupled cluster theory

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arxiv 2205.12990 v1 pith:33MW4NIR submitted 2022-05-25 nucl-th

classification nucl-th
keywords ccsdrenormalizeclustercontactcoupledtheorythree-bodyaccurate
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abstract

Coupled cluster theory is an attractive tool to solve the quantum many-body problem because its singles and doubles (CCSD) approximation is computationally affordable and yields about 90% of the correlation energy. Capturing the remaining 10%, e.g. via including triples, is numerically expensive. Here we assume that short-range three-body correlations dominate and - following Lepage [How to renormalize the Schr\"odinger equation, arXiv:nucl-th/9706029] - that their effects can be included within CCSD by renormalizing the three-body contact interaction. We renormalize this contact in $^{16}$O and obtain accurate CCSD results for $^{24}$O, $^{20-34}$Ne, $^{40,48}$Ca, $^{78}$Ni, $^{90}$Zr, and $^{100}$Sn.

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Cited by 2 Pith papers

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  1. A nuclear mass model rooted in chiral effective field theory

    nucl-th 2025-04 conditional novelty 6.0 of 10

    A Hartree-Fock model with 11 chiral low-energy constants fitted to 18 nuclei reaches 3.5 MeV RMS on 107 even-even nuclei, worse than a liquid-drop fit to the same data.

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    nucl-th 2026-07 unverdicted

    A community white paper summarizing the current state and future directions of nuclear beta-decay studies at FRIB, with no new quantitative result.

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