PaperPanorama

Nuclear Theory·nucl-th

Wednesday·June 13, 2018

8 papers3 primary·5 cross-listed

  1. 01

    Possible scenarios for single, double, or multiple kinetic freeze-out in high energy collisions

    Muhammad Waqas🇨🇳 · Fu-Hu Liu🇨🇳 · Sakina Fakhraddin🇸🇦 · Magda A. Rahim🇸🇦

    Transverse momentum spectra of different types of particles produced in mid-rapidity interval in central and peripheral gold-gold (Au-Au) collisions, central and peripheral deuteron-gold (-Au) collisions, and inelastic (INEL) or non-single-diffractive (NSD) proton-proton () collisions at the Relativistic Heavy Ion Collider (RHIC), as well as in central and peripheral lead-lead (Pb-Pb) collisions, central and peripheral proton-lead (-Pb) collisions, and INEL or NSD collisions at the Large Hadron Collider (LHC) are analyzed by the blast-wave model with Boltzmann-Gibbs statistics. The model results are largely consist with the experimental data in special transverse momentum ranges measured by the PHENIX, STAR, ALICE, and CMS Collaborations. It is showed that the kinetic freeze-out temperature of emission source is dependent on particle mass, which reveals the scenario for multiple kinetic freeze-out in collisions at the RHIC and LHC. The scenario for single or double kinetic freeze-out is not observed in this study.

    nucl-thIndian J.Phys.(2019)·27 citations
  2. 02

    Isospin mixing and Coulomb mixing in ground states of even-even nuclei

    Bui Minh Loc · Naftali Auerbach · G. Colò

    In this work, the Coulomb mixing and the isospin mixing in the ground states of even-even nuclei are evaluated in perturbation theory. The calculation of the isospin mixing is performed by using the connection to isovector monopole resonance properties. The uncertainty in the results that depends on different choices of the Skyrme interactions is shown. While Coulomb mixing turns out to be large in the ground states of heavy nuclei, isospin mixing is very small.

    nucl-thPRC(2019)·9 citations
  3. 03

    Freeze-out conditions from strangeness observables at RHIC

    Marcus Bluhm (Wroclaw U.)🇵🇱 · Marlene Nahrgang (SUBATECH, Nantes)🇫🇷

    We determine chemical freeze-out conditions from strangeness observables measured at RHIC beam energies. Based on a combined analysis of lowest-order net-Kaon fluctuations and strange anti-baryon over baryon yield ratios we obtain visibly enhanced freeze-out conditions at high beam energies compared to previous studies which analyzed net-proton and net-charge fluctuations. Our findings are in qualitative agreement with the recent study [1] which utilizes the net-Kaon fluctuation data in combination with information from lattice QCD. Our complimentary approach shows that also strange hadron yield ratios are described by such enhanced freeze-out conditions.

    nucl-thhep-phEPJC(2019)·38 citations

Affiliations

first authorsco-authorsvia INSPIRE