PaperPanorama

Nuclear Theory·nucl-th

Thursday·June 1, 2017

11 papers5 primary·6 cross-listed

  1. 01

    Pinning Down the Axial-Vector Coupling Constant in Nuclei and Dense Matter

    Mannque Rho🇫🇷

    The in-medium property of the axial-vector coupling constant in nuclei and dense baryonic matter, a long standing problem in nuclear physics, is reformulated in terms of the recently constructed scale-invariant hidden local symmetric (HLS) Lagrangian that encompasses the physics of baryon density ranging from nuclear matter to that of massive compact stars, . It is shown that unlike the pion decay constant that slides with the vacuum change induced by, and dropping with, increasing density, the axial-current constant should remain more or less unaffected by the decrease of chiral condensate in nuclear Gamow-Teller transitions (involving the space component of the axial current) whereas it gets strongly enhanced in axial-charge transitions (involving the time component of the axial current) as density increases. This phenomenon confirms the "chiral filter hypothesis" inferred from the current algebras in 1970's. These phenomena can be taken as a "nuclear physics proof" of Weinberg's folk theorem on quantum effective field theories. The implications of these predictions on giant Gamow-Teller resonances in nuclei and on first-forbidden beta transitions (relevant to nuclear astrophysical processes) are discussed.

    nucl-thhep-ph2 citations
  2. 02

    Taking into Account the Centre-of-Mass Correlations in the Cross Sections for Elastic Scattering of Intermediate Energy Protons on the Exotic Nuclei He and He

    G.D. Alkhazov · V.V. Sarantsev

    We calculate the differential cross sections for proton elastic scattering on the exotic halo nuclei He and He at energies around 0.7 GeV at the momentum transfers squared up to 0.30 (GeV/) and investigate the influence of the nucleon centre-of-mass correlations on the calculated cross sections. In particular, we show that the approximate account of the centre-of-mass correlations used previously considerably overestimates the cross sections at high values of the momentum transfer.

    nucl-thPhys.Atom.Nucl.(2017)·1 citation
  3. 03

    From bare to renormalized order parameter in gauge space: structure and reactions

    G. Potel · A. Idini · F. Barranco · E. Vigezzi · R. A. Broglia

    The physical reason why one can calculate with similar accuracy, as compared to the experimental data, the absolute cross section associated with two-nucleon transfer processes between members of pairing rotational bands, making use of simple BCS (constant matrix elements) or of many-body (Nambu-Gorkov (NG), nuclear field theory (NFT)) spectroscopic amplitudes, is not immediately obvious. Restoration of spontaneous symmetry breaking and associated emergent generalised rigidity in gauge space provides the answer, and points to a new emergence: a physical sum rule resulting from the intertwining of structure and reaction processes and closely connected with the central role induced pairing interaction plays in structure together with the fact that successive transfer dominates Cooper pair tunnelling.

    nucl-thPRC(2017)·7 citations
  4. 04

    Dynamics of Fragment Formation in Neutron Rich Matter

    Pablo Alcain · Claudio Dorso

    Background: Neutron stars are astronomical systems with nucleons submitted to extreme conditions. Due to the longer range coulomb repulsion between protons, the system has structural inhomogeneities. Several interactions tailored to reproduce nuclear matter plus screened Coulomb term reproduce these inhomogeneities known as nuclear pasta. These structural inhomogeneities, located in the crust of neutron stars, can also arise in expanding systems depending on the thermodynamic conditions (temperature, proton fraction, ...) and the expansion velocity. Purpose: We aim to find the dynamics of the fragments formation for expanding systems simulated according to the little big bang model. This expansion resembles the evolution of neutron stars merger. Method: We study the dynamics of the nucleons with semiclassical molecular dynamics models. Starting with an equilibrium configuration, we expand the system homogeneously until we arrive to an asymptotic configuration (i. e. very low final densities). We study, with four different cluster recognition algorithms, the fragment distribution throughout this expansion and the dynamics of the cluster formation. Results: Studying the topology of the equilibrium states, before the expansion, we reproduced the known pasta phases plus a novel phase we called pregnocchi, consisting of proton aggregates embedded in a neutron sea. We have identified different fragmentation regimes, depending on the initial temperature and fragment velocity. In particular, for the already mentioned pregnocchi, a neutron cloud surrounds the clusters during the early stages of the expansion, resulting in systems that give rise to configurations compatibles with the emergence of r-proccess. Conclusions: These calculations pave the way to a comparision between Earth experiments and neutron star studies.

    nucl-thPRC(2018)·10 citations
  5. 05

    Effect of Pauli repulsion and transfer on fusion

    C. Simenel · K. Godbey · A. S. Umar · K. Vo-Phuoc · M. Dasgupta · D. J. Hinde · E. C. Simpson

    The effect of the Pauli exclusion principle on the nucleus-nucleus bare potential is studied using a new density-constrained extension of the Frozen-Hartree-Fock (DCFHF) technique. The resulting potentials exhibit a repulsion at short distance. The charge product dependence of this Pauli repulsion is investigated. Dynamical effects are then included in the potential with the density-constrained time-dependent Hartree-Fock (DCTDHF) method. In particular, isovector contributions to this potential are used to investigate the role of transfer on fusion, resulting in a lowering of the inner part of the potential for systems with positive Q-value transfer channels.

    nucl-thEPJ Web Conf.(2017)·2 citations

Affiliations

first authorsco-authorsvia INSPIRE