PaperPanorama

Nuclear Theory·nucl-th

Thursday·August 17, 2023

11 papers5 primary·6 cross-listed

  1. 01

    Thermodynamics of quark matter with multiquark clusters in an effective Beth-Uhlenbeck type approach

    D. Blaschke🇵🇱 · M. Cierniak🇵🇱 · O. Ivanytskyi🇵🇱 · G. Röpke🇵🇱

    We describe multiquark clusters in quark matter within a Beth-Uhlenbeck approach in a background gluon field coupled to the underlying chiral quark dynamics using the Polyakov gauge which establishes the center symmetry of color SU(3) that suppresses colored states as an aspect of confinement. Quark confinement is modeled by a large quark mass in vacuum motivated by a confining density functional approach. A multiquark cluster containing quarks and antiquarks is described as a binary composite of smaller subclusters and (). It has a spectrum consisting of a bound state and a scattering state continuum. For the corresponding cluster-cluster phase shifts we discuss simple ansätze that capture the Mott dissociation of clusters as a function of temperature and chemical potential. We go beyond the simple "step-up-step-down" model that ignores continuum correlations and introduce an improved model that includes them in a generic form. In order to explain the model, we restrict ourselves here to the cases where the cluster size is . A striking result is the suppression of the abundance of colored multiquark clusters at low temperatures by the coupling to the Polyakov loop and their importance for a quantitative description of lattice QCD thermodynamics at non-vanishing baryochemical potentials. An important ingredient are Polyakov-loop generalized distribution functions of -quark clusters which are derived here for the first time. Within our approach we calculate thermodynamic properties such as baryon density and entropy. We demonstrate that the limits of a hadron resonance gas at low temperatures and perturbative QCD at high temperatures are correctly reproduced. A comparison with lattice calculations shows that our model is able to give a unified, systematic approach to describe properties of the quark-gluon-hadron system.

    nucl-thhep-phEPJA(2024)·11 citations
  2. 02

    Radial Oscillations of Neutron Stars with Antikaon Condensate

    Apurba Kheto🇮🇳 · Prasanta Char🇧🇪

    In this article, we study the neutron stars with antikaon condensates and their radial oscillations. We incorporate the antikaons within a relativistic mean field theory with density dependent couplings. A transition to the kaon condensed phase is treated as a second order phase transition for different possible antikaon optical potentials. Then, we solve the structure equations of stars and calculate the fundamental and higher order frequencies of their radial pulsations. We study the eigenfunctions of different radial modes for a star with equations of state having different potential depths of antikaons. We also study the large frequency separations for the star. We find distinct features of the appearances of antikaons on the eigenfunctions. The shape of the eigenfunctions corresponding to the radial perturbations is affected due to the appearance of the antikaons, but for the pressure perturbation, the shape remains unchanged.

    nucl-thastro-ph.HEEPJA(2023)·5 citations
  3. 03

    Constraints on the Nuclear Symmetry Energy from Experiments, Theory and Observations

    James M. Lattimer

    Nuclear mass measurements and neutron matter theory tightly constrain the nuclear symmetry energy parameters , , and . Corroboration of these constraints on and can be found from measurements of the neutron skin thicknesses and dipole polarizabilities of neutron-rich nuclei. The experimental constraints on these parameters are compared with those obtained from consideration of astrophysical measurements of the neutron star radius, which we show is highly correlated with . Attention is aimed at the recent PREX and CREX neutron skin measurements from Jefferson Lab, NICER neutron star radius measurements, and a new interpretation of the GW170817 tidal deformability measurement. We find joint satisfaction of PREX and CREX gives MeV and MeV, in excellent agreement with neutron matter predictions of MeV and MeV.

    nucl-thastro-ph.HEnucl-exJ.Phys.Conf.Ser.(2023)·16 citations
  4. 04

    Elastic scattering and total reaction cross sections of Li studied with a microscopic continuum discretized coupled channels model

    Wendi Chen · D.Y. Pang · Hairui Guo · Ye Tao · Weili Sun · Yangjun Ying

    We present a systematic study of Li elastic scattering and total reaction cross sections at incident energies around the Coulomb barrier within the continuum discretized coupled-channels (CDCC) framework, where Li is treated in an + two-body model. Collisions with Al, Zn, Ba and Pa are analyzed. The microscopic optical potentials (MOP) based on Skyrme nucleon-nucleon interaction for and are adopted in CDCC calculations and satisfactory agreement with the experimental data is obtained without any adjustment on MOPs. For comparison, the and global phenomenological optical potentials (GOP) are also used in CDCC analysis and a reduction no less than 50 on the surface imaginary part of deuteron GOP is required for describing the data. In all cases, the Li breakup effect is significant and provides repulsive correction to the folding model potential. The reduction on the surface imaginary part of GOP of deuteron reveals a strong suppression of the reaction probability of deuteron as a component of Li as compared with that of a free deuteron. A further investigation is made by taking the breakup process into account equivalently within the dynamic polarization potential approach and it shows that behaves like a tightly bound nucleus in Li induced reactions.

    nucl-thCPC(2024)·1 citation
  5. 05

    Effect of Spin-Dependent Short-Range Correlations on Nuclear Matrix Elements for Neutrinoless Double Beta Decay of Ca

    S.Sarkar🇮🇳 · Y. Iwata🇯🇵

    The neutrinoless double beta decay is a pivotal weak nuclear process that holds the potential to unveil the Majorana nature of neutrinos and predict their absolute masses. In this study, we delve into examining the impact of spin-dependent short-range correlations (SRC) on the nuclear matrix elements (NMEs) for the light neutrino-exchange mechanism in neutrinoless double beta () decay of Ca, employing an extensive interacting nuclear shell model. All computations are performed employing the effective shell model Hamiltonian GXPF1A, encompassing the entire model space through the closure approximation. Our investigation examines the NMEs' dependencies on factors such as the number of intermediate states, coupled spin-parity attributes of neutrons and protons, neutrino momentum, inter-nucleon separation, and closure energy. This scrutiny is performed with respect to both the conventional Jastrow-type approach of SRC, employing various parameterizations, and the spin-dependent SRC paradigm. Our findings illuminate a discernible distinction in NMEs induced by spin-dependent SRC, differing by approximately 10-20\% from those computed through the conventional Jastrow-type SRC, incorporating distinct parameterizations.

    nucl-thUniverse(2023)·4 citations

Affiliations

first authorsco-authorsvia INSPIRE