PaperPanorama

Nuclear Theory·nucl-th

Monday·November 17, 2025

7 papers4 primary·3 cross-listed

  1. 05

    Accuracy and Applicability of the Hartle-Thorne and Komatsu-Eriguchi-Hachisu Methods for Modeling Rotating Neutron Stars

    Hyukjin Kwon · Kenta Yoshimura · Tsuyoshi Miyatsu · Kazuyuki Sekizawa · Myung-Ki Cheoun

    Neutron stars, which are composed of extremely dense nuclear matter, serve as natural laboratories to study nuclear interactions beyond the terrestrial experiments. Recent researches have actively explored how the equation of state (EoS) can be constrained by observed neutron star masses and radii, and how nuclear interactions affect their macroscopic properties. Most of these studies, however, rely on the Tolman-Oppenheimer-Volkoff (TOV) equations, which assumed static, spherically symmetric neutron stars. Since neutron stars are rotating objects and thus axisymmetrically deformed, the TOV calculation may be insufficient to capture their realistic structure. In this work, we investigate the influence of nuclear matter properties on the physical quantities of rotating neutron stars using two approaches: the perturbative Hartle-Thorne (HT) method and fully general relativistic Komatsu-Eriguchi-Hachisu (KEH) method. For nuclear EoS parameter sets, we emamine the OMEG series, in which the slope of the symmetry energy is systematically varied. We find that rotational effects lead to a noticeable increase in the stellar radius, which depends sensitively on values of . Additionally, focusing on the rotational deformation, we show that the results obtained by these two methods deviate each other even for the slowly rotating case such as Hz. These results reveal that, for detailed discussions on the internal structure and stability of rotating neutron stars, the fully general relativistic method such as KEH is indispensable.

    astro-ph.HEastro-ph.SRgr-qcnucl-thApJ(2026)·2 citations
  2. 06

    Self-gravitating baryonic tubes supported by - and -mesons and its flat limit

    Gonzalo Barriga🇧🇪 · Carla Henríquez-Baez🇨🇱 · Leonardo Sanhueza🇨🇱 · Aldo Vera🇨🇱

    In this paper, we construct self-gravitating topological solitons in the Einstein non-linear sigma model coupled to -vector mesons in four space-time dimensions. These solutions represent tube-like configurations free of curvature singularities, carrying a non-vanishing topological charge that is identified as the baryon number. We show that by employing the maximal embedding Ansatz of into in the exponential representation, these tubes can be constructed for an arbitrary number of flavors, , with the topological charge scaling proportionally to this number. The flat-space limit of the solutions, corresponding to an array of baryonic tubes within a finite volume, is analyzed in detail. Remarkably, while the total energy of the solitons at a finite volume is an increasing function of , the binding energy decreases as the number of flavors increases. This analysis reaffirms that the inclusion of more than two flavors to the model systematically improves the physical predictions.

    hep-thgr-qcnucl-th1 citation
  3. 07

    Exclusive photoproduction of a pair in the saturation framework

    Michael Fucilla🇫🇷 · Saad Nabeebaccus🇫🇷 · Lech Szymanowski🇵🇱 · Samuel Wallon🇫🇷 · Joseph Yarwick🇫🇷

    We consider the exclusive photoproduction of a pair with large invariant mass, as a promising channel to study the effects of gluon saturation. It has recently been demonstrated that this process is incompatible with a collinear factorization approach in terms of generalized parton distributions (GPDs) at the leading twist. In such a situation, a (generalized) -dependent factorization at small is a valid alternative approach. We perform this calculation using the shockwave formalism, which resums multiple gluon exchanges between the projectile and the dense nuclear target. We find that the polarized amplitude changes sign as a function of back-to-back transverse momentum of the pion-photon pair, resulting in a dip-like structure in the fully differential cross section as a function of .

    hep-phhep-exnucl-exnucl-th2 citations

Affiliations

first authorsco-authorsvia INSPIRE