PaperPanorama

Nuclear Theory·nucl-th

Wednesday·August 9, 2017

8 papers3 primary·5 cross-listed

  1. 01

    Multipole excitations in hot nuclei within the finite temperature quasiparticle random phase approximation framework

    E. Yüksel🇹🇷 · G. Colò🇮🇹 · E. Khan🇫🇷 · Y.F. Niu🇷🇴 · K. Bozkurt🇹🇷

    The effect of temperature on the evolution of the isovector dipole and isoscalar quadrupole excitations in Ni and Sn nuclei is studied within the fully self-consistent finite temperature quasiparticle random phase approximation framework, based on the Skyrme-type SLy5 energy density functional. The new low-energy excitations emerge due to the transitions from thermally occupied states to the discretized continuum at finite temperatures, whereas the isovector giant dipole resonance is not strongly impacted by the increase of temperature. The radiative dipole strength at low-energies is also investigated for the Sn nucleus, becoming compatible with the available experimental data when the temperature is included. In addition, both the isoscalar giant quadrupole resonance and low-energy quadrupole states are sensitive to the temperature effect: while the centroid energies decrease in the case of the isoscalar giant quadrupole resonance, the collectivity of the first state is quenched and the opening of new excitation channels fragments the low-energy strength at finite temperatures.

    nucl-thPRC(2017)·37 citations
  2. 02

    Two-flavor hybrid stars with the Dyson-Schwinger quark model

    J.-B. Wei🇨🇳 · H. Chen🇨🇳 · H.-J Schulze🇨🇳

    We study the properties of two-flavor quark matter in the Dyson-Schwinger model and investigate the possible consequences for hybrid neutron stars, with particular regard to the two-solar-mass limit. We find that with some extreme values of the model parameters, the mass fraction of two-flavor quark matter in heavy neutron stars can be as high as 30 percent and the possible energy release during the conversion from nucleonic neutron stars to hybrid stars can reach erg.

    nucl-thCPC(2017)·3 citations
  3. 03

    Double-folding potentials from chiral effective field theory

    V. Durant🇩🇪 · P. Capel🇩🇪 · L. Huth🇩🇪 · A. B. Balantekin🇺🇸 · A. Schwenk🇩🇪

    The determination of nucleus-nucleus potentials is important not only to describe the properties of the colliding system, but also to extract nuclear-structure information and for modelling nuclear reactions for astrophysics. We present the first determination of double-folding potentials based on chiral effective field theory at leading, next-to-leading, and next-to-next-to-leading order. To this end, we construct new soft local chiral effective field theory interactions. We benchmark this approach in the O-O system, and present results for cross sections computed for elastic scattering up to 700 MeV in energy, as well as for the astrophysical -factor of the fusion reaction.

    nucl-thnucl-exPLB(2018)·27 citations

Affiliations

first authorsco-authorsvia INSPIRE