PaperPanorama

Nuclear Theory·nucl-th

Wednesday·June 2, 2021

12 papers9 primary·3 cross-listed

  1. 10

    [Submitted on 1 Jun 2021] (cross-list from hep-ph)

    Reexamination of local spin polarization beyond global equilibrium in relativistic heavy ion collisions

    Cong Yi🇨🇳 · Shi Pu🇨🇳 · Di-Lun Yang🇹🇼

    We study local spin polarization in the relativistic hydrodynamic model. Generalizing the Wigner functions previously obtained from chiral kinetic theory by Y. Hidaka et al. [Phys. Rev. D 97, 016004 (2018)] to the massive case, we present the possible contributions up to the order of from thermal vorticity, shear viscous tensor, other terms associated with the temperature and chemical-potential gradients, and electromagnetic fields to the local spin polarization. We then implement the (3+1)-dimensional viscous hydrodynamic model to study the spin polarizations from these sources with a small chemical potential and ignorance of electromagnetic fields by adopting an equation of state different from those in other recent studies. Although the shear correction alone upon the local polarization results in a sign and azimuthal-angle dependence more consistent with experimental observations, as also discovered in other recent studies, it is mostly suppressed by the contributions from thermal vorticity and other terms that yield an opposite trend. It is found that the total local spin polarization can be very sensitive to the equation of states, the ratio of shear viscosity to entropy density, and the freeze-out temperature.

    Comments:
    22 pages, 5 figures; matched the journal version, typos for T in Fig.3 corrected
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); Nuclear Theory (nucl-th)
    arXiv:
    2106.00238 [pdf]
    PRC(2021)·119 citations
  2. 11

    [Submitted on 1 Jun 2021] (cross-list from nucl-ex)

    The extremes of neutron richness

    F. Miguel Marqués🇫🇷

    A neutron star is pictured as a gigantic nucleus overwhelmed by the number of neutrons, unlike real atomic nuclei, that have a similar number of neutrons and protons. Is this true? What if we could find, or create nuclei without protons? How far can we go in neutron richness? Our common sense tells us that these neutral nuclei should not exist, but if they do they would change our knowledge on neutron stars, on the properties of nuclei in general, and ultimately on the nucleon-nucleon interaction itself, the building block of matter. This huge potential impact has pushed some ambitious nuclear physicists to search for them since the 1960s. The first positive hints appeared only in the XXI century, and nowadays several collaborations are trying to corner these weird objects and give a definite answer to this crucial question. In this \edit{review} we will go through this fascinating quest, that started with humble experiments and has now reached a stage of ambitious and sophisticated projects, both in experiment and theory.

    Comments:
    21 pages, 15 figures, lecture given at the Third Pisa Summer School, "Rewriting Nuclear Physics Textbooks: one more step forward", University of Pisa (Italy), July 22-26, 2019
    Subjects:
    Nuclear Experiment (nucl-ex); Nuclear Theory (nucl-th)
    arXiv:
    2106.00516 [pdf]
    Eur.Phys.J.Plus(2021)·2 citations
  3. 12

    [Submitted on 1 Jun 2021] (cross-list from quant-ph)

    Z3 gauge theory coupled to fermions and quantum computing

    Ronak Desai🇺🇸 · Yuan Feng🇺🇸 · Mohammad Hassan🇺🇸 · Abhishek Kodumagulla🇺🇸 · Michael McGuigan🇺🇸

    We study the Z3 gauge theory with fermions on the quantum computer using the Variational Quantum Eigensolver (VQE) algorithm with IBM QISKit software. Using up to 9 qubits we are able to obtain accurate results for the ground state energy. Introducing nonzero chemical potential we are able to determine the Equation of State (EOS) for finite density on the quantum computer. We discuss possible realizations of quantum advantage for this system over classical computers with regards to finite density simulations and the fermion sign problem.

    Subjects:
    Quantum Physics (quant-ph); High Energy Physics — Theory (hep-th); Nuclear Theory (nucl-th)
    arXiv:
    2106.00549 [pdf]
    2 citations

Affiliations

first authorsco-authorsvia INSPIRE