PaperPanorama

Nuclear Theory·nucl-th

Monday·January 20, 2020

7 papers2 primary·5 cross-listed

  1. 01

    Tidal Deformation of Neutron Stars from Microscopic Models of Nuclear Dynamics

    Andrea Sabatucci · Omar Benhar

    The observation of the gravitational wave signal GW170817, consistent with emission from the inspiral of a binary neutron-star system, provided information on the tidal deformation of the participating stars. The available data may be exploited to constrain the equation of state of densenuclear matter, as well as to shed light on the underlying models describing nuclear dynamics at microscopic level. In this paper we compare the experimental results to the predictions of different theoretical models, based on non relativistic nuclear many-body theory, the relativistic field-theoretical formalism, and a more phenomenological approach constrained by observed nuclear properties. While the precision of the available data does not allow to resolve the degeneracy of the models, our analysis shows a distinct sensitivity to the star compactness predicted by the different equations of state, which turns out to be significantly affected by relativistic boost corrections to the nucleon-nucleon potential.

    nucl-thgr-qcPRC(2020)·22 citations
  2. 02

    Systematic behavior of the fusion barrier parameters for heavy ion pairs [MSc Thesis]

    M. Ismail · A. Y. Ellithi · A. Adel · A. R. Abdulghany

    The nucleus-nucleus potential is calculated in the frame work of the double folding model (DFM) to obtain the Coulomb barrier parameters (barrier position and height), starting from M3Y-Reid nucleon-nucleon interaction and realistic nuclear matter distribution. The systematic behavior of the barrier parameters with mass numbers, charges, and radii of interacting nuclei is studied. The relation between the barrier height and radius is also discussed. The systematic behavior of the barrier parameters is presented in the form of simple analytical formulae, which can be used to calculate the barrier position and height directly, and show which factors can affect them. The potentials obtained from DFM are used to derive a universal function of the nuclear proximity potential which is useful for barrier calculations for heavy ion reactions. The obtained universal function reproduces the barrier parameters within less than 2% deviation from the values obtained using DFM for heavy and super heavy ion reactions. Reactions involving {\alpha}-particle are studied individually, and another form of the universal function is presented.

    nucl-th0 citations

Affiliations

first authorsco-authorsvia INSPIRE