PaperPanorama

Nuclear Theory·nucl-th

Wednesday·April 26, 2023

9 papers3 primary·6 cross-listed

  1. 01

    Accurate relativistic density functional for exchange energy of atomic nuclei

    Qiang Zhao · Zhengxue Ren · Pengwei Zhao · Tae-Sun Park

    The inclusion of nucleonic exchange energy has been a long-standing challenge for the relativistic density functional theory (RDFT) in nuclear physics. We propose an orbital-dependent relativistic Kohn-Sham density functional theory to incorporate the exchange energy with local Lorentz scalar and vector potentials. The relativistic optimized effective potential equations for the local exchange potentials are derived and solved efficiently. The obtained binding energies and charge radii for nuclei are benchmarked with the results given by the traditional relativistic Hartree-Fock approach, which involves complicated nonlocal potentials. It demonstrates that the present framework is not only accurate but also efficient.

    nucl-thPLB(2023)·2 citations
  2. 02

    Random model of flow decorrelation

    Piotr Bozek🇵🇱 · Hadi Mehrabpour🇩🇪

    The collective flow generated in relativistic heavy-ion collisions fluctuates from event to event. The fluctuations lead to a decorrelation of flow vectors measured in separate bins in phase space. These effects have been measured in experiments and observed in numerical simulations in hydrodynamic models. We present a simple random model of flow decorrelation in pseudorapidity. Analytical expressions for the flow factorization breaking coefficients for flow vectors, flow vector magnitudes, and flow angles are derived. The model explains the relations between different factorization breaking coefficients found in experimental data and model simulations. In particular, it is found that the flow angle decorrelation constitutes about one half of the total flow vector decorrelation.

    nucl-thhep-phnucl-exPRC(2023)·3 citations
  3. 03

    Exploring the effects of electromagnetic fields and tilted bulk distribution on directed flow of D mesons in small systems

    Yifeng Sun🇨🇳 · Salvatore Plumari🇮🇹 · Santosh K. Das🇮🇳

    We studied the directed flow of heavy quarks in small systems produced in p-Pb collisions due to both the impact of initial vorticity and electromagnetic fields. We employed a relativistic transport code to model the bulk evolution of the small systems and studied the heavy quark momentum evolution using Langevin dynamics. For the heavy quarks interaction with the bulk, we employed a quasiparticle model (QPM). We observed a large directed flow splitting () of charm quarks due to electromagnetic fields, which is comparable to the directed flow splitting of charm quarks in nucleus-nucleus collisions. However, the magnitude of the directed flow due to the initial tilted matter distribution in p-nucleus collisions is not substantial. The observed directed flow is not rapidity odd due to the asymmetry in the colliding system. The results presented in this manuscript provide an independent way to quantify the initial electromagnetic field produced and the matter distributed in small systems.

    nucl-thhep-exhep-phPLB(2023)·24 citations

Affiliations

first authorsco-authorsvia INSPIRE