PaperPanorama

Nuclear Theory·nucl-th

Friday·June 15, 2018

6 papers2 primary·4 cross-listed

  1. 01

    Low-energy quadrupole states in neutron-rich tin nuclei

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

    We present a study on the isoscalar quadrupole strength in tin nuclei, focusing mainly on the low-energy region. The calculations are performed using the Skyrme type energy density functionals within the fully self-consistent quasiparticle random phase approximation, allowing for a good description of the experimental data for the first 2 state and the isoscalar giant quadrupole resonance. It is found that the first state and the low-energy quadrupole states between 3 and 6 MeV display an opposite behavior with increasing neutron number. While the strength of the first state decreases, some excited states start to accumulate between 3 and 6 MeV, and increase their strength with increasing neutron number. This low-energy region between 3 and 6 MeV is quite sensitive to the changes in the shell structure with increasing neutron number. In particular, between Sn and Sn, the filling of the neutron orbitals with large values of , has an important impact on the low-energy region. Our analysis shows that the low-energy states have a non-collective character, except the first 2 state. In addition, the states in the low-energy region above 5 MeV display an interesting pattern: with the increase of the neutron number, their strength increases and their nature changes, namely they switch from proton excitations to neutron-dominated one. We conclude that the low-energy quadrupole states between 3 and 6 MeV can provide information about the shell evolution in open-shell nuclei.

    nucl-thnucl-exPRC(2018)·14 citations
  2. 02

    Probing the in-Medium QCD Force by Open Heavy-Flavor Observables

    Shuai Y.F. Liu🇺🇸 · Min He🇨🇳 · Ralf Rapp🇺🇸

    The determination of the color force in a quark-gluon plasma (QGP) is a key objective in the investigation of strong-interaction matter. Open and hidden heavy-flavor observables in heavy-ion collisions (HICs) are believed to provide insights into this problem by comparing calculations of heavy-quark (HQ) and quarkonium transport with pertinent experimental data. In this work, we utilize the -matrix formalism to compute charm-quark transport coefficients for various input potentials previously extracted from simultaneous fits to lattice-QCD data for HQ free energies, quarkonium correlators and the QGP equation of state. We investigate the impact of off-shell effects (spectral functions) in the QGP medium on the HQ transport, and compare to earlier results using the free or internal HQ energies as potential proxies. We then employ the transport coefficients in relativistic Langevin simulations for HICs to test the sensitivity of heavy-flavor observables to the HQ interactions in the QGP. We find that a strongly-coupled -matrix solution generates a HQ elliptic flow comparable to the results from the internal energy at low momentum, driven by a long-range remnant of the confining force, while falling off stronger with increasing 3-momentum. The weakly coupled -matrix solution, whose underlying potential is close to the free energy, leads to an elliptic flow well below the experimentally observed range.

    nucl-thhep-phnucl-exPRC(2019)·42 citations

Affiliations

first authorsco-authorsvia INSPIRE