PaperPanorama

Nuclear Theory·nucl-th

Wednesday·April 8, 2020

12 papers8 primary·4 cross-listed

  1. 01

    Gamow Shell Model description of Li isotopes and their mirror partners

    X. Mao · J. Rotureau · W. Nazarewicz · N. Michel · R.M. Id Betan · Y. Jaganathen

    Background: Weakly bound and unbound nuclei close to particle drip lines are laboratories of new nuclear structure physics at the extremes of neutron/proton excess. The comprehensive description of these systems requires an open quantum system framework that is capable of treating resonant and nonresonant many-body states on equal footing. Purpose: In this work, we construct the minimal complex-energy configuration interaction approach to describe binding energies and spectra of selected 5 A 11 nuclei. Method: We employ the complex-energy Gamow shell model (GSM) assuming a rigid He core. The effective Hamiltonian, consisting of a core-nucleon Woods-Saxon potential and a simplified version of the Furutani-Horiuchi-Tamagaki interaction with the mass-dependent scaling, is optimized in the sp space. To diagonalize the Hamiltonian matrix, we employ the Davidson method and the Density Matrix Renormalization Group technique. Results: Our optimized GSM Hamiltonian offers a good reproduction of binding energies and spectra with the root-mean-square (rms) deviation from experiment of 160 keV. Since the model performs well when used to predict known excitations that have not been included in the fit, it can serve as a reliable tool to describe poorly known states. A case in point is our prediction for the pair of unbound mirror nuclei Li-N in which a huge Thomas-Ehrman shift dramatically alters the pattern of low-energy excitations. Conclusion: The new model will enable comprehensive studies of structure and reactions aspects of light drip-line nuclei.

    nucl-thPRC(2020)·27 citations
  2. 02

    High-Energy Phase Diagrams with Charge and Isospin Axes under Heavy-Ion Collision and Stellar Conditions

    K. Aryal🇺🇸 · C. Constantinou🇺🇸 · R. L. S. Farias🇧🇷 · V. Dexheimer🇺🇸

    We investigate the phase transition from hadron to quark matter in the general case without the assumption of chemical equilibrium. The effects of net strangeness on charge and isospin fractions, chemical potentials, and temperature are studied in the context of the Chiral Mean Field (CMF) model that incorporates chiral symmetry restoration and deconfinement. The extent to which these quantities are probed during deconfinement in conditions expected to exist in protoneutron stars, binary neutron-star mergers, and heavy-ion collisions is analyzed via the construction of 3-dimensional phase diagrams.

    nucl-thastro-ph.HEastro-ph.SRhep-phPRD(2020)·35 citations
  3. 03

    Nuclear modification factor in Pb-Pb and p-Pb collisions using Boltzmann transport equation

    L. Qiao🇨🇳 · G. Che🇨🇳 · J. Gu🇨🇳 · H. Zheng🇨🇳 · W.C. Zhang🇨🇳

    We investigate the nuclear modification factor () of identified particles as a function of transverse momentum () in Pb-Pb collisions at 2.76 and 5.02 TeV, as well as p-Pb collision at 5.02 TeV in the framework of Boltzmann transport equation with relaxation time approximation. In this framework, the initial distribution of particles is chosen as the Tsallis distribution and the local equilibrium distribution as the Boltzmann-Gibbs blast-wave distribution. The non-extensive parameter , the Tsallis temperature and the equilibrium temperature are set to be in common for all particles, while the ratio of kinetic freeze-out time to relaxation time is different for different particles when we performed a combined fit to the spectra of different particles at a given centrality. We observe that the fitted curves describe the spectra well up to 3 GeV/c. and () decrease (increases) with centrality nonlinearly, while is almost independent of centrality. The dependence of the rate at which , or changes with centrality on the energy and the size of the colliding system is discussed.

    nucl-thJ.Phys.G(2020)·13 citations
  4. 04

    Temperature fluctuations and Tsallis statistics in Relativistic Heavy Ion collisions

    Abhisek Saha🇮🇳 · Soma Sanyal🇮🇳

    We study temperature fluctuations in the initial stages of the relativistic heavy ion collision using a multiphase transport model. We consider the plasma in the initial stages after collision before it has a chance to equilibrate. We have considered Au + Au collision with a center of mass energy of 200 GeV. We use the non extensive Tsallis statistics to find the entropic index in the partonic stages of the relativistic heavy ion collisions. We find that the temperature and the entropic index have a linear relationship during the partonic stages of the heavy ion collision. This has already been observed in the hadronic phase. A detailed analysis of the dependence of the entropic index on the system shows that for increasing space time rapidity, the entropic index of the partonic system increases. The entropic index also depends on the beam collision energy. The calculation of the entropic index from the experimental data fitting of the transverse momenta deals with the hadronic phase. However, our current study shows that the behaviour of the entropic index in the initial non-equilibrium stage of the collision is very similar to the behaviour of the entropic index in the hadronic stage.

    nucl-thMod.Phys.Lett.A(2021)·5 citations
  5. 06

    Tensor and pairing interactions within the QMC energy density functional

    Kay Marie L. Martinez🇦🇺 · Anthony William Thomas🇦🇺 · Pierre A. M. Guichon🇫🇷 · Jirina R. Stone🇬🇧

    In the latest version of the QMC model, QMC-III-T, the density functional is improved to include the tensor component quadratic in the spin-current and a pairing interaction derived in the QMC framework. Traditional pairing strengths are expressed in terms of the QMC parameters and the parameters of the model optimised. A variety of nuclear observables are calculated with the final set of parameters. The inclusion of the tensor component improves the predictions for ground-state bulk properties, while it has a small effect on the single-particle spectra. Further, its effect on the deformation of selected nuclei is found to improve the energies of doubly-magic nuclei at sphericity. Changes in the energy curves along the Zr chain with increasing deformation are investigated in detail. The new pairing functional is also applied to the study of neutron shell gaps, where it leads to improved predictions for subshell closures in the superheavy region.

    nucl-thPRC(2020)·20 citations
  6. 07

    Seebeck effect in a thermal QCD medium in the presence of strong magnetic field

    Debarshi Dey🇮🇳 · Binoy Krishna Patra🇮🇳

    The strongly interacting partonic medium created post ultrarelativistic heavy ion collision experiments exhibits a significant temperature-gradient between the central and peripheral regions of the collisions, which in turn, is capable of inducing an electric field in the medium; a phenomenon known as Seebeck effect. The effect is quantified by the magnitude of the induced electric field per unit temperature-gradient - the Seebeck coefficient (). We study the coefficient, in the relativistic Boltzmann transport equation in relaxation-time approximation, as a function of temperature () and chemical potential (), wherein we find that with current quark masses, the magnitude of for individual flavours as well as that for the medium as a whole decreases with and increases with , with the electric charge of the flavour deciding the sign of . The emergence of a strong magnetic field () in the non-central collisions at heavy-ion collider experiments motivates us to study the effect of on Seebeck effect. The strong affects in multifold ways, via : a) modification of phase-space due to the dimensional reduction, b) dispersion relation in lowest Landau level (occupation probability), and c) relaxation-time. We find that a strong not only decreases the magnitudes of 's of individual species, it also flips their signs. This leads to a faster reduction of the magnitude of of the medium than its counterpart at . We then explore how the interactions among partons in perturbative thermal QCD in the quasiparticle framework affect Seebeck effect, where we find that even in strong B, there is no more a flip of the sign of for individual species and an enhancement of the magnitudes of of individual species as well as that of the medium, compared to current quark mass description at either or .

    nucl-thcond-mat.mes-hallhep-phPRD(2020)·25 citations
  7. 08

    Transverse momentum dependent decorrelation in Pb-Pb collisions at LHC

    De-Xian Wei🇨🇳

    Based on A Multi-Phase Transport (AMPT) model simulations, the transverse momentum dependent decorrelation has been studied in Pb-Pb collisions at = 2.76 and 5.02 TeV, respectively. It has been found that the mix-order factorization ratio value deviates significantly from unity in noncentral collisions. Such effect becomes stronger with an increase in the difference . These decorrelations are not only between the same order harmonic but also between the different order harmonic, which as a result of the initial fluctuations appear between the different phase spaces. It has also been found that the correlations involving higher powers of the flow vector yield stronger decorrelation, , except for the weighted factorization ratio . The breaking phenomenon of these factorization ratios indicated that it provides a possible observation for studying the initial fluctuation properties of heavy-ion collisions.

    nucl-thIJMPE(2020)·0 citations

Affiliations

first authorsco-authorsvia INSPIRE