PaperPanorama

Nuclear Theory·nucl-th

Wednesday·October 21, 2020

8 papers4 primary·4 cross-listed

  1. 01

    [Submitted on 19 Oct 2020]

    From high theory and data to inferring anisotropy of Quark-Gluon Plasma

    Magdalena Djordjevic🇷🇸 · Stefan Stojku🇷🇸 · Dusan Zigic🇷🇸 · Bojana Ilic🇷🇸 · Jussi Auvinen🇷🇸 · Igor Salom🇷🇸 · Marko Djordjevic🇷🇸 · Pasi Huovinen🇷🇸

    High theory and data are commonly used to study high parton interactions with QGP, while low data and corresponding models are employed to infer QGP bulk properties. On the other hand, with a proper description of high parton-medium interactions, high probes become also powerful tomography tools, since they are sensitive to global QGP features, such as different temperature profiles or initial conditions. This tomographic role of high probes can be utilized to assess the spatial anisotropy of the QCD matter. With our dynamical energy loss formalism, we show that a (modified) ratio of and presents a reliable and robust observable for straightforward extraction of initial state anisotropy. We analytically estimated the proportionality between the and anisotropy coefficient , and found surprisingly good agreement with full-fledged numerical calculations. Within the current error bars, the extraction of the anisotropy from the existing data using this approach is still inaccessible. However, with the expected accuracy improvement in the upcoming LHC runs, the anisotropy of the QGP formed in heavy ion collisions can be straightforwardly derived from the data. Such a data-based anisotropy parameter would present an important test to models describing the initial stages of heavy-ion collision and formation of QGP, and demonstrate the usefulness of high theory and data in obtaining QGP properties.

    Comments:
    Contribution to XXVIIIth International Conference on Ultrarelativistic Nucleus-Nucleus Collisions (Quark Matter 2019)
    Subjects:
    Nuclear Theory (nucl-th); High Energy Physics — Phenomenology (hep-ph)
    arXiv:
    2010.09773 [pdf]
    NPA(2021)·0 citations
  2. 02

    [Submitted on 20 Oct 2020]

    Charge-dependent transverse momentum and its impact on the search for the chiral magnetic wave

    Wen-Ya Wu🇨🇳 · Chun-Zheng Wang🇨🇳 · Qi-Ye Shou🇨🇳 · Yu-Gang Ma🇨🇳 · Liang Zheng🇨🇳

    The chiral magnetic wave (CMW) is sought using the charge asymmetry () dependence of anisotropic flow in heavy-ion collisions. The charge dependent transverse momentum (), however, could play a role as a background. With the string fragmentation models, including PYTHIA, we demonstrate the origin of the correlation and its connection with the local charge conservation (LCC). The impact of and its behavior in varied kinematic windows are also discussed. This study provides more insights for the search for the CMW and comprehending the collective motion of the quark-gluon plasma.

    Comments:
    6 pages, 6 figures
    Subjects:
    Nuclear Theory (nucl-th); Nuclear Experiment (nucl-ex)
    arXiv:
    2010.09955 [pdf]
    PRC(2021)·10 citations
  3. 03

    [Submitted on 20 Oct 2020]

    Total reaction cross section on a deuteron target and the eclipse effect of the constituent neutron and proton

    W. Horiuchi · Y. Suzuki · T. Uesaka · M. Miwa

    Background: Eclipse effect of the neutron and proton in a deuteron target is essential to correctly describe high-energy deuteron scattering. The nucleus-deuteron scattering needs information not only on the nucleus-proton but also the nucleus-neutron interaction, for which no direct measurement of the nucleus-neutron cross sections is available for unstable nuclei. Purpose: We systematically evaluated the total reaction cross sections by a deuteron target to explore the feasibility of extracting the nucleus-neutron interaction from measurable cross sections. Methods: High-energy nucleus-deuteron collision is described by the Glauber model, in which the proton and neutron configuration of the deuteron is explicitly taken into account. Results: Our calculation reproduces available experimental total reaction cross section data on the nucleus-deuteron scattering. The possibility of extracting the nucleus-neutron total reaction cross section from nucleus-deuteron and nucleus-proton total reaction cross sections is explored. The total reaction cross sections of a nucleus by proton, neutron, and deuteron targets can be expressed, to good accuracy, in terms of the nuclear matter radius and neutron skin thickness. Incident-energy dependence of the total reaction cross sections is examined. Conclusions: The total reaction cross section on a deuteron target includes information on both the nucleus-neutron and nucleus-proton profile functions. Measuring the cross sections by deuteron and proton targets is a promising tool to extract the nuclear size properties.

    Comments:
    9 pages, 5 figures, to appear in Phys. Rev. C
    Subjects:
    Nuclear Theory (nucl-th); Nuclear Experiment (nucl-ex)
    arXiv:
    2010.09956 [pdf]
    PRC(2020)·5 citations
  4. 04

    [Submitted on 18 Oct 2020]

    Properties of heaviest nuclei with and

    P. Jachimowicz🇵🇱 · M. Kowal🇵🇱 · J. Skalski🇵🇱

    We systematically determine ground-state and saddle-point shapes and masses for 1305 heavy and superheavy nuclei with and , including odd- and odd-odd systems. From these, we derive static fission barrier heights, one- and two-nucleon separation energies, and values for g.s. to g.s transitions. Our study is performed within the microscopic-macroscopic method with the deformed Woods-Saxon single-particle potential and the Yukawa-plus-exponential macroscopic energy taken as the smooth part. We use parameters of the model that were fitted previously to masses of even-even heavy nuclei. For systems with odd numbers of protons, neutrons, or both, we use a standard BCS method with blocking. Ground-state shapes and energies are found by the minimization over seven axially-symmetric deformations. A search for saddle-points was performed by using the "imaginary water flow" method in three consecutive stages, using five- (for nonaxial shapes) and seven-dimensional (for reflection-asymmetric shapes) deformation spaces. The results are collected in two main tables. Calculated ground-state mass excess, nucleon separation- and energies, total, macroscopic(normalized to the macroscopic energy at the spherical shape) and shell corrections energies, and deformations are given for each nucleus in \mbox{Table 1}. \mbox{Table 2} contains calculated properties of the saddle-point configurations and the fission barrier heights. In \mbox{Tables 3-7}, are given calculated ground-state, inner and outer saddle-point and superdeformed secondary minima characteristics for 75 actinide nuclei, from Ac to Cf, for which experimental estimates of fission barrier heights are known. These results are an additional test of our model.

    Comments:
    Submitted to ADNDT. arXiv admin note: text overlap with arXiv:1203.5013
    Subjects:
    Nuclear Theory (nucl-th)
    arXiv:
    2010.10018 [pdf]
    Atom.Data Nucl.Data Tabl.(2021)·67 citations

Affiliations

first authorsco-authorsvia INSPIRE