PaperPanorama

Nuclear Theory·nucl-th

Tuesday·October 25, 2016

17 papers12 primary·5 cross-listed

  1. 01

    Phonon-particle coupling effects in odd-even double mass differences of semi-magic nuclei

    E.E. Saperstein · M. Baldo · S.S. Pankratov · S.V. Tolokonnikov

    A method is developed to consider the particle-phonon coupling (PC) effects in the calculation of the odd-even double mass differences (DMD) in semi-magic nuclei starting from the free -potential. The PC correction to the mass operator is found in -approximation, being the vertex of creating the -phonon. The tadpole term of the operator is taken into account. The method is based on a direct, without any use of the perturbation theory, solution of the Dyson equation with the mass operator for finding the single-particle energies and -factors. In its turn, they are used as an input for finding different PC corrections to the DMD values. Results for a chain of even semi-magic nuclei Pb show that the inclusion of the PC corrections makes agreement with the experimental data significantly better.

    nucl-thJETP Lett.(2016)·5 citations
  2. 02

    A novel nuclear dependence of nucleon-nucleon short-range correlations

    Hongkai Dai🇨🇳 · Rong Wang🇨🇳 · Yin Huang🇨🇳 · Xurong Chen🇨🇳

    A linear correlation is found between the magnitude of nucleon-nucleon short-range correlations and the nuclear binding energy per nucleon with pairing energy removed. By using this relation, the strengths of nucleon-nucleon short-range correlations of some unmeasured nuclei are predicted. Discussions on nucleon-nucleon pairing energy and nucleon-nucleon short-range correlations are made. The found nuclear dependence of nucleon-nucleon short-range correlations may shed some lights on the short-range structure of nucleus.

    nucl-thhep-phPLB(2017)·8 citations
  3. 03

    Probing the Source of Proton Mass by"Unbreaking" Scale-Chiral Symmetry

    Mannque Rho🇫🇷

    I describe a possible scenario for the origin of proton mass in terms of Cheshire Cat, half-skyrmions, topology change and interplay between hidden chiral-scale symmetry and induced local symmetry. This differs from the standard constituent-quark scenario. As the baryonic matter density is increased toward the vector manifestation (VM) fixed-point at which the mass is to vanish, the effective in-medium mass ratio is to tend to zero proportionally to where is the in-medium hidden gauge coupling constant. I develop the thesis that the intricacy involved in the mass generation could be decoded from experiments at RIB accelerators and massive compact stars.

    nucl-thhep-phNew Phys.Sae Mulli(2016)·6 citations
  4. 04

    Higher moments of multiplicity fluctuations in a hadron-resonance gas with exact conservation laws

    Jing-Hua Fu🇨🇳

    Higher moments of multiplicity fluctuations of hadrons produced in central nucleus-nucleus collisions are studied within the hadron-resonance gas model in the canonical ensemble. Exact conservation of three charges, baryon number, electric charge, and strangeness, is enforced in the large volume limit. Moments up to the forth order of various particles are calculated at SPS, RHIC and LHC energies. The asymptotic fluctuations within a simplified model with only one conserved charge in the canonical ensemble are discussed where simple analytical expressions for moments of multiplicity distributions can be obtained. Moments products of net-proton, net-kaon, and net-charge distributions in Au + Au collisions at RHIC energies are calculated. The pseudo-rapidity coverage dependence of net-charge fluctuation is discussed.

    nucl-thPRC(2017)·17 citations
  5. 05

    Determining Transport Coefficients for a Microscopic Simulation of a Hadron Gas

    Scott Pratt🇺🇸 · Alexander Baez🇺🇸 · Jane Kim🇺🇸

    Quark-Gluon plasmas produced in relativistic heavy-ion collisions quickly expand and cool, entering a phase consisting of multiple interacting hadronic resonances just below the QCD deconfinement temperature, MeV. Numerical microscopic simulations have emerged as the principal method for modeling the behavior of the hadronic stage of heavy-ion collisions, but the transport properties that characterize these simulations are not well understood. Methods are presented here for extracting the shear viscosity, and two transport parameters that emerge in Israel-Stewart hydrodynamics. The analysis is based on studying how the stress-energy tensor responds to velocity gradients. Results agree with expectations based on Kubo relations.

    nucl-thPRC(2017)·11 citations
  6. 06

    Non-perturbative production rate of photons with a lattice quark propagator: effect of vertex correction

    Taekwang Kim🇯🇵 · Masayuki Asakawa🇯🇵 · Masakiyo Kitazawa🇯🇵

    We analyze the production rate of photons from the thermal medium above the deconfinement temperature with a quark propagator obtained from a lattice QCD numerical simulation. The photon-quark vertex is determined gauge-invariantly, so as to satisfy the Ward-Takahashi identity. The obtained photon production rate shows a suppression compared to perturbative results.

    nucl-thhep-phActa Phys.Polon.Supp.(2017)·0 citations
  7. 07

    Scattering states of Dirac particle equation with position dependent mass under the cusp potential

    M. Chabab · A. El Batoul · H. Hassanabadi · M. Oulne · S. Zare

    We solved the one-dimensional position-dependent mass Dirac equation in the presence of the cusp potential and reported the solutions in terms of the Whittaker functions. We have derived the reflection and transmission coefficients by making use of the matching conditions on the wave functions. The effect of position dependent mass on the reflection and transmission coefficients of the system is duly investigated.

    nucl-thEur.Phys.J.Plus(2016)·8 citations
  8. 08

    The dynamic polarization potential and dynamical non-locality in nuclear potentials: Deuteron-nucleus potential

    R.S. Mackintosh · N.Keeley

    The consequences for direct reactions of the dynamical non-locality generated by the excitation of the target and projectile are much less studied than the effects of non-locality arising from exchange processes. Here we are concerned with the dynamical non-locality due to projectile excitation in deuteron induced reactions. The consequences of this non-locality can be studied by the comparison of deuteron induced direct reactions calculated with alternative representations of the elastic channel wave functions: (i) the elastic channel wave functions from coupled channel (CC) calculations involving specific reaction processes, and, (ii) elastic channel wave functions calculated from local potentials that exactly reproduce the elastic scattering -matrix from the same CC calculations. In this work we produce the local equivalent deuteron potentials required for the study of direct reactions involving deuterons. These will enable the study of the effects of dynamical non-locality following a method previously employed in an investigation of the effects of non-locality due to target excitation. In this work we consider only excitations due to deuteron breakup, and some new properties of the breakup dynamical polarization potential (DPP) emerge that reveal dynamical non-locality directly. In addition, we evaluate the TELP inversion method and find that it fails to reproduce some features of the DPP due to breakup.

    nucl-thnucl-ex5 citations
  9. 09

    Deuteron properties from muonic atom spectroscopy

    N. G. Kelkar🇨🇴 · D. Bedoya Fierro🇨🇴

    Leading order () finite size corrections in muonic deuterium are evaluated within a few body formalism for the system in muonic deuterium and found to be sensitive to the input of the deuteron wave function. We show that this sensitivity, taken along with the precise deuteron charge radius determined from muonic atom spectroscopy can be used to determine the elusive deuteron D-state probability, , for a given model of the nucleon-nucleon (NN) potential. The radius calculated with a of 4.3\% in the chiral NN models and about 5.7\% in the high precision NN potentials is favoured most by the data.

    nucl-thhep-phPLB(2017)·6 citations
  10. 10

    Scalable Nuclear Density Functional Theory with Sky3D

    Md Afibuzzaman · Bastian Schuetrumpf · Hasan Metin Aktulga

    In nuclear astrophysics, quantum simulations of large inhomogeneous dense systems as they appear in the crusts of neutron stars present big challenges. The number of particles in a simulation with periodic boundary conditions is strongly limited due to the immense computational cost of the quantum methods. In this paper, we describe techniques for an efficient and scalable parallel implementation of Sky3D, a nuclear density functional theory solver that operates on an equidistant grid. Presented techniques allow Sky3D to achieve good scaling and high performance on a large number of cores, as demonstrated through detailed performance analysis on a Cray XC40 supercomputer.

    nucl-thphysics.comp-phComput.Phys.Commun.(2018)·6 citations
  11. 11

    Model Selection for Pion Photoproduction

    J. Landay🇺🇸 · M. Döring🇺🇸 · C. Fernández-Ramírez🇲🇽 · B. Hu🇺🇸 · R. Molina🇺🇸

    Partial-wave analysis of meson and photon-induced reactions is needed to enable the comparison of many theoretical approaches to data. In both energy-dependent and independent parametrizations of partial waves, the selection of the model amplitude is crucial. Principles of the -matrix are implemented to different degree in different approaches, but a many times overlooked aspect concerns the selection of undetermined coefficients and functional forms for fitting, leading to a minimal yet sufficient parametrization. We present an analysis of low-energy neutral pion photoproduction using the Least Absolute Shrinkage and Selection Operator (LASSO) in combination with criteria from information theory and -fold cross validation. These methods are not yet widely known in the analysis of excited hadrons but will become relevant in the era of precision spectroscopy. The principle is first illustrated with synthetic data, then, its feasibility for real data is demonstrated by analyzing the latest available measurements of differential cross sections (), photon-beam asymmetries (), and target asymmetry differential cross sections () in the low energy regime.

    nucl-thhep-phnucl-exPRC(2017)·41 citations
  12. 12

    Functional renormalization group studies of nuclear and neutron matter

    Matthias Drews🇩🇪 · Wolfram Weise🇺🇸

    Functional renormalization group (FRG) methods applied to calculations of isospin-symmetric and asymmetric nuclear matter as well as neutron matter are reviewed. The approach is based on a chiral Lagrangian expressed in terms of nucleon and meson degrees of freedom as appropriate for the hadronic phase of QCD with spontaneously broken chiral symmetry. Fluctuations beyond mean-field approximation are treated solving Wetterich's FRG flow equations. Nuclear thermodynamics and the nuclear liquid-gas phase transition are investigated in detail, both in symmetric matter and as a function of the proton fraction in asymmetric matter. The equations of state at zero temperature of symmetric nuclear matter and pure neutron matter are found to be in good agreement with advanced ab-initio many-body computations. Contacts with perturbative many-body approaches (in-medium chiral perturbation theory) are discussed. As an interesting test case, the density dependence of the pion mass in the medium is investigated. The question of chiral symmetry restoration in nuclear and neutron matter is addressed. A stabilization of the phase with spontaneously broken chiral symmetry is found to persist up to high baryon densities once fluctuations beyond mean-field are included. Neutron star matter including beta equilibrium is discussed under the aspect of the constraints imposed by the existence of two-solar-mass neutron stars.

    nucl-thhep-phPPNP(2017)·79 citations

Affiliations

first authorsco-authorsvia INSPIRE