PaperPanorama

Nuclear Theory·nucl-th

Monday·November 18, 2024

9 papers2 primary·7 cross-listed

  1. 01

    Exploring the interplay of helicity and global-frame spin density matrix elements

    Gavin Wilks🇺🇸 · Zhenyu Ye🇺🇸

    A significant -meson global spin alignment () signal was measured in Au+Au collisions at GeV. Conventional physics mechanisms such as spin polarization fail to accommodate this signal, motivating further investigation into its origin. Recent studies from a general framework utilizing the gauge/gravity duality predict that there could be non-zero helicity-frame spin alignment generated by the relative motion of pairs to the thermal background in heavy-ion collisions, leading to significant global . In this work, we derive the expected relationships between -meson helicity and global-frame spin density matrix elements and confirm these analytical results using Monte Carlo simulations. The effects on these relationships from finite elliptic flow and various kinematic selections are also examined. Additionally, we extract simultaneously with the off-diagonal elements from the 2-dimensional and angular dimensions, as opposed to the standard 1-dimensional extraction of . These angles describe the direction of a daughter kaon's momentum in the -meson's rest frame, where is the polar angle with respect to the chosen spin-quantization axis, and is the azimuthal angle in the perpendicular plane. This 2-dimensional method allows us to consider possible effects from finite geometric acceptance and detector efficiencies, which could couple to the spin density matrix elements and influence the extraction of these elements within the same frame. The studies presented in this work explore the relationships between helicity and global-frame spin density matrix elements and possible detector effects on the 2-dimensional extraction of spin density matrix elements.

    nucl-th1 citation
  2. 02

    Properties of a kaon-condensed phase in hyperon-mixed matter with three-baryon forces

    Takumi Muto🇯🇵

    Coexistent phase of kaon condensates and hyperons [(+) phase] in beta equilibrium with electrons and muons is investigated as a possible form of dense hadronic phase with multi-strangeness. The effective chiral Lagrangian for kaon-baryon and kaon-kaon interactions is utilized within chiral symmetry approach in combination with the interaction model between baryons. For the baryon-baryon interactions, we adopt the minimal relativistic mean-field theory with exchange of scalar mesons and vector mesons between baryons without including the nonlinear self-interacting meson field terms. In addition, the universal three-baryon repulsion and the phenomenological three-nucleon attraction are introduced as density-dependent effective two-body potentials. The repulsive effects leading to stiff equation of state at high densities consist of both the two-baryon repulsion via the vector-meson exchange and the universal three-baryon repulsion. Interplay of kaon condensates with hyperons through chiral dynamics in dense matter is clarified, and resulting onset mechanisms of kaon condensation in hyperon-mixed matter and the equation of state with the (+) phase and characteristic features of the system are presented. It is shown that the slope of the symmetry energy controls the two-baryon repulsion beyond the saturation density and resulting stiffness of the equation of state. The stiffness of the equation of state in turn controls admixture of hyperons and the onset and development of kaon condensates as a result of competing effect between kaon condensates and hyperons. The equation of state with the (+) phase becomes stiff enough to be consistent with recent observations of massive neutron stars. Static properties of neutron stars with the (+) phase are discussed.

    nucl-thastro-ph.HEPRC(2025)·7 citations

Affiliations

first authorsco-authorsvia INSPIRE