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The nuclear matter equation of state with consistent two- and three-body perturbative chiral interactions

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arxiv 1402.0965 v2 pith:UMIHGGMB submitted 2014-02-05 nucl-th

classification nucl-th
keywords chiralmatternuclearconsistentcutoffdependenceenergyequation
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We compute the energy per particle of infinite symmetric nuclear matter from chiral N3LO (next-to-next-to-next-to-leading order) two-body potentials plus N2LO three-body forces. The low-energy constants of the chiral three-nucleon force that cannot be constrained by two-body observables are fitted to reproduce the triton binding energy and the 3H-3He Gamow-Teller transition matrix element. In this way, the saturation properties of nuclear matter are reproduced in a parameter-free approach. The equation of state is computed up to third order in many-body perturbation theory, with special emphasis on the role of the third-order particle-hole diagram. The dependence of these results on the cutoff scale and regulator function is studied. We find that the inclusion of three-nucleon forces consistent with the applied two-nucleon interaction leads to a reduced dependence on the choice of the regulator only for lower values of the cutoff.

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  1. Nuclear and neutron matter in the relativistic Brueckner-Hartree-Fock theory with next-to-leading order covariant chiral nuclear force

    nucl-th 2025-06 conditional novelty 6.0 of 10

    The authors find that NLO covariant chiral nuclear forces in relativistic Brueckner-Hartree-Fock theory reproduce the empirical saturation energy, density, and incompressibility of symmetric nuclear matter at cutoff 5...

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