PaperPanorama

Nuclear Theory·nucl-th

Monday·September 13, 2021

3 papers2 primary·1 cross-listed

  1. 01

    Exploring the halo character and dipole response in the dripline nucleus F

    G. Singh · Jagjit Singh · J. Casal · L. Fortunato

    Lying at the lower edge of the `island of inversion', neutron-rich Fluorine isotopes (F) provide a curious case to study the configuration mixing in this part of the nuclear landscape. Recent studies have suggested that a prospective two-neutron halo in the dripline nucleus F could be linked to the occupancy of the intruder configurations. Focusing on configuration mixing, matter radii and neutron-neutron () correlations in the ground-state of F, we explore various scenarios to analyze its possible halo nature as well as the low-lying electric dipole (1) response within a three-body approach. We use an analytical, transformed harmonic oscillator basis under the aegis of a hyperspherical formalism to construct the ground state three-body wave function of F. The F ground-state configuration mixing and its matter radius are computed for different choices of the F structure coupled to the valence neutron. The admixture of {, , and } components is found to play an important role, favouring the dominance of inverted configurations with dineutron spreads for two-neutron halo formation. The increase in matter radius with respect to the core radius, 0.30 fm and the dipole distributions along with the integrated strengths of 2.6 fm are large enough to be compatible with other two-neutron halo nuclei. Three-body results for F indicate a large spatial extension in its ground state due to the inversion of the energy levels of the normal shell model scheme. The increase is augmented by and is proportional to the extent of the component in the wave function. Additionally, the enhanced dipole distributions and large strengths all point to the two-neutron halo character of F.

    nucl-thnucl-exPRC(2022)·20 citations
  2. 02

    Left-right splitting of elliptic flow due to directed flow in heavy ion collisions

    Chao Zhang🇺🇸 · Zi-Wei Lin🇺🇸

    Recently the splitting of elliptic flow at finite rapidities has been proposed as a result of the global vorticity in non-central relativistic heavy ion collisions. In this study, we find that this left-right (i.e., on opposite sides of the impact parameter axis) splitting of the elliptic flow at finite rapidities is a result of the non-zero directed flow , with the splitting magnitude . We also use a multi-phase transport model, which automatically includes the vorticity field and flow fluctuations, to confirm the splitting. In addition, we find that the analytical expectations for the splitting work for the raw and (i.e., before event plane resolutions are applied) measured relative to either the first- or second-order event plane. Since the splitting is mostly driven by , it vanishes at zero transverse momentum (), and its magnitude and sign may have non-trivial dependencies on , centrality, collision energy, and hadron species.

    nucl-thnucl-exPRC(2022)·8 citations
  3. 03

    The momentum broadening of energetic partons in an anisotropic plasma

    Sigtryggur Hauksson🇨🇦 · Sangyong Jeon🇨🇦 · Charles Gale🇨🇦

    The quark-gluon plasma produced in heavy-ion collisions is anisotropic throughout its evolution. This anisotropy changes the physics of jet-medium interaction, making it dependent on the momentum direction of the jet. In this paper we analyze transverse momentum broadening of a jet parton interacting with soft gluons in an anisotropic plasma. Our analysis equally applies to momentum broadening of quasiparticles in kinetic theory. We subtract contribution from instability modes in the deep infrared and discuss how our calculation should be complemented in that regime. The resulting anisotropic collision kernel for momentum broadening is qualitatively different from the equilibrium collision kernel and from the isotropic ansatz used in effective kinetic theory. Because of increased medium screening, there is substantially less transverse broadening at low and intermediate momenta.

    hep-phnucl-thPRC(2022)·50 citations

Affiliations

first authorsco-authorsvia INSPIRE