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Constraining three-nucleon forces with multimessenger data

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arxiv 2010.03581 v2 pith:WJGOBH6F submitted 2020-10-07 astro-ph.HE gr-qcnucl-th

Constraining three-nucleon forces with multimessenger data

classification astro-ph.HE gr-qcnucl-th
keywords potentialnuclearthree-nucleondensitiesmassresultssupranucleartextemdash
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We report the results of a study aimed at inferring direct information on the repulsive three-nucleon potential $V^R_{ijk}$\textemdash driving the stiffness of the nuclear matter equation of state at supranuclear densities\textemdash from astrophysical observations. Using a Bayesian approach, we exploit the measurements of masses, radii and tidal deformabalities performed by the NICER satellite and the LIGO/Virgo collaboration, as well as the mass of the heaviest observed pulsar, to constrain the strength of $V^R_{ijk}$. The baseline of our analysis is the widely employed nuclear Hamiltonian comprising the Argonne $v_{18}$ nucleon-nucleon potential andthe Urbana IX model of three-nucleon potential. The numerical results, largely determined by the bound on the maximum mass, suggest that existing and future facilities have the potential to provide valuable new insight into microscopic nuclear dynamics at supranuclear densities.

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  1. Constraining Hamiltonians from chiral effective field theory with neutron-star data

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    Neutron-star data, run through fast emulators, directly constrain the six two-nucleon low-energy constants of an N2LO chiral Hamiltonian, with future detectors able to strongly pin down the 3P1 channel.