PaperPanorama

Nuclear Theory·nucl-th

Monday·June 20, 2022

5 papers2 primary·3 cross-listed

  1. 01

    Exploring universal characteristics of neutron star matter with relativistic \textit{ab initio} equations of state

    Sibo Wang🇨🇳 · Chencan Wang🇨🇳 · Hui Tong🇨🇳

    Starting from the relativistic realistic nucleon-nucleon () interactions, a newly developed relativistic \textit{ab initio} method, i.e., the relativistic Brueckner-Hartree-Fock (RBHF) theory in the full Dirac space is employed to study the neutron star properties. First, the one-to-one correspondence relation for gravitational redshift and mass is established and used to infer the mass of isolated neutron stars combining the gravitational redshift measurements. Next, the ratio of the moment of inertia to as a function of the compactness is obtained, which is consistent with the universal relations in the literature. The moment of inertia for pulsar PSR J0737-3039A is predicted to be 1.356, 1.381, and by the RBHF theory in the full Dirac space with interactions Bonn A, B, and C, respectively. Finally, the quadrupole moment of neutron star is calculated under the slow-rotation and small-tidal-deformation approximation. The equation of states constructed by the RBHF theory in the full Dirac space, together with those by the projection method and momentum-independence approximation, conform to universal -Love- relations as well. By combing the tidal deformability from GW170817 and the universal relations from relativistic \textit{ab initio} methods, the moment of inertia of neutron star with 1.4 solar mass is also deduced as .

    nucl-thPRC(2022)·19 citations
  2. 02

    Testing chiral unitary models for the in photoproduction

    P. C. Bruns🇨🇿 · A. Cieplý🇨🇿 · M. Mai🇩🇪

    We adopt a novel formalism for the low-energy analysis of the photoproduction reaction to calculate the invariant mass distributions in the resonance region. The approach adheres to constraints arising from unitarity, gauge invariance and chiral perturbation theory, and is used without adjusting any model parameters. It is found that the meson-baryon rescattering in the final state has a major impact on the magnitude and structure of the generated spectra that are compared with the experimental data from the CLAS collaboration. We demonstrate a large sensitivity of the theoretical predictions to the choice of the coupled-channel model amplitudes which should enable one to constrain the parameter space of these models.

    nucl-thhep-ph2 citations

Affiliations

first authorsco-authorsvia INSPIRE