PaperPanorama

Nuclear Theory·nucl-th

Tuesday·August 25, 2015

18 papers8 primary·10 cross-listed

  1. 01

    Roles of Antinucleon Degrees of Freedom in the Relativistic Random Phase Approximation

    Haruki Kurasawa🇯🇵 · Toshio Suzuki🇯🇵

    Roles of antinucleon degrees of freedom in the relativistic random phase approximation(RPA) are investigated. The energy-weighted sum of the RPA transition strengths is expressed in terms of the double commutator between the excitation operator and the Hamiltonian, as in nonrelativistic models. The commutator, however, should not be calculated with a usual way in the local field theory, because, otherwise, the sum vanishes. The sum value obtained correctly from the commutator is infinite, owing to the Dirac sea. Most of the previous calculations takes into account only a part of the nucleon-antinucleon states, in order to avoid the divergence problems. As a result, RPA states with negative excitation energy appear, which make the sum value vanish. Moreover, disregarding the divergence changes the sign of nuclear interactions in the RPA equation which describes the coupling of the nucleon particle-hole states with the nucleon-antinucleon states. Indeed, excitation energies of the spurious state and giant monopole states in the no-sea approximation are dominated by those unphysical changes. The baryon current conservation can be described without touching the divergence problems. A schematic model with separable interactions is presented, which makes the structure of the relativistic RPA transparent.

    nucl-thPTEP(2015)·1 citation
  2. 02

    Covariant energy density functionals: the assessment of global performance across the nuclear landscape

    A.V.Afanasjev

    The assessment of the global performance of the state-of-the-art covariant energy density functionals and related theoretical uncertainties in the description of ground state observables has recently been performed. Based on these results, the correlations between global description of binding energies and nuclear matter properties of covariant energy density functionals have been studied in this contribution.

    nucl-thAIP Conf.Proc.(2015)·0 citations
  3. 03

    Extended Hartree-Fock study of the single-particle potential: the nuclear symmetry energy, nucleon effective mass, and folding model of the nucleon optical potential

    Doan Thi Loan · Bui Minh Loc · Dao T. Khoa

    The nucleon mean-field potential has been thoroughly investigated in an extended Hartree-Fock (HF) calculation of nuclear matter (NM) using the CDM3Y3 and CDM3Y6 density dependent versions of the M3Y interaction. The single-particle (s/p) energies of nucleons in NM are determined according to the Hugenholtz-van Hove theorem, which gives rise naturally to a rearrangement term (RT) of the s/p potential at the Fermi momentum. Using the RT obtained exactly at the different NM densities and neutron-proton asymmetries, a consistent method is suggested to take into account effectively the momentum dependence of the RT of the s/p potential within the standard HF scheme. To obtain a realistic momentum dependence of the nucleon optical potential (OP), the high-momentum part of the s/p potential was accurately readjusted to reproduce the observed energy dependence of the nucleon OP over a wide range of energies. The impact of the RT and momentum dependence of the s/p potential on the density dependence of the nuclear symmetry energy and nucleon effective mass has been studied in details. The high-momentum tail of the s/p potential was found to have a sizable effect on the slope of the symmetry energy and the neutron-proton effective mass splitting at supranuclear densities of the NM. Based on a local density approximation, the folding model of the nucleon OP of finite nuclei has been extended to take into account consistently the RT and momentum dependence of the nucleon OP in the same mean-field manner, and successfully applied to study the elastic neutron scattering on the lead target at the energies around the Fermi energy.

    nucl-thnucl-exPRC(2015)·25 citations
  4. 04

    Correlations in light nuclei and their relation to fine tuning and uncertainty quantifications of many body forces in low-energy nuclear physics

    Sergiu Lupu🇮🇱 · Nir Barnea🇮🇱 · Doron Gazit (Hebrew U.)🇮🇱

    The large nucleon-nucleon scattering length, and the isospin approximate symmetry, are low energy properties of quantum chromodynamics (QCD). These entail correlations in the binding energies of light nuclei, e.g., the A=3 iso-multiplet, and Tjon's correlation between the binding energy of three and four body nuclei. Using a new representation of these, we establish that they translate into a correlation between different short-range contributions to three body forces in chiral effective field theory of low-energy nuclear physics. We demonstrate that these correlations should be taken into account in order to avoid fine-tuning in the calibration of three body forces. We relate this to the role of correlations in uncertainty quantification of non-renormalizable effective field theories of the nuclear regime. In addition, we show that correlations can be useful in assessing the importance of forces induced by renormalization group (RG) transformations. We give numerical evidence that such RG transformations can be represented effectively by adding a constant to the pure three nucleon contact low energy constant .

    nucl-th2 citations
  5. 05

    Are there good probes for the di-neutron correlation in light neutron-rich nuclei?

    K. Hagino · H. Sagawa

    The di-neutron correlation is a spatial correlation with which two valence neutrons are located at a similar position inside a nucleus. We discuss possible experimental probes for the di-neutron correlation. This includes the Coulomb breakup and the pair transfer reactions of neutron-rich nuclei, and the direct two-neutron decays of nuclei beyond the neutron drip-line.

    nucl-thnucl-exFew Body Syst.(2016)·13 citations
  6. 06

    Effect of Wigner energy on the symmetry energy coefficient in nuclei

    Junlong Tian · Haitao Cui · Teng Gao · Ning Wang

    The nuclear symmetry energy coefficient (including the coefficient of term) of finite nuclei is extracted by using the differences of available experimental binding energies of isobaric nuclei. It is found that the extracted symmetry energy coefficient decreases with increasing of isospin asymmetry , which is mainly caused by Wigner correction, since is the summation of the traditional symmetry energy and the Wigner energy . We obtain the optimal values MeV, MeV, MeV and the Wigner parameter through the polynomial fit to 2240 measured binding energies for nuclei with with an rms deviation of 23.42 keV. We also find that the volume symmetry coefficient MeV is insensitive to the value , whereas the surface symmetry coefficient and the coefficient are very sensitive to the value of in the range . The contribution of term increases rapidly with increasing of isospin asymmetry . For very neutron-rich nuclei, the contribution of term will play an important role.

    nucl-thCPC(2016)·9 citations
  7. 07

    MCNP6 simulation of light and medium nuclei fragmentation at intermediate energies

    Stepan G. Mashnik · Leslie M. Kerby

    Fragmentation reactions induced on light and medium nuclei by protons and light nuclei of energies around 1 GeV/nucleon and below are studied with the Los Alamos transport code MCNP6 and with its CEM03.03 and LAQGSM03.03 event generators. CEM and LAQGSM assume that intermediate-energy fragmentation reactions on light nuclei occur generally in two stages. The first stage is the intranuclear cascade (INC), followed by the second, Fermi breakup disintegration of light excited residual nuclei produced after the INC. CEM and LAQGSM account also for coalescence of light fragments (complex particles) up to 4He from energetic nucleons emitted during INC. We investigate the validity and performance of MCNP6, CEM, and LAQGSM in simulating fragmentation reactions at intermediate energies and discuss possible ways of further improving these codes

    nucl-thEPJ Web Conf.(2016)·1 citation
  8. 08

    A viscous blast-wave model for relativistic heavy-ion collisions

    Amaresh Jaiswal🇩🇪 · Volker Koch🇺🇸

    Using a viscosity-based survival scale for geometrical perturbations formed in the early stages of relativistic heavy-ion collisions, we model the radial flow velocity during freeze-out. Subsequently, we employ the Cooper-Frye freeze-out prescription, with first-order viscous corrections to the distribution function, to obtain the transverse momentum distribution of particle yields and flow harmonics. For initial eccentricities, we use the results of Monte Carlo Glauber model. We fix the blast-wave model parameters by fitting the transverse momentum spectra of identified particles at the Large Hadron Collider (LHC) and demonstrate that this leads to a fairly good agreement with transverse momentum distribution of elliptic and triangular flow for various centralities. Within this viscous blast-wave model, we estimate the shear viscosity to entropy density ratio at the LHC.

    nucl-thhep-ph25 citations
  9. 09

    Anisotropic emission of thermal dielectrons from Au+Au collisions at ~GeV with EPOS3

    Sheng-Xu Liu🇨🇳 · Fu-Ming Liu🇨🇳 · Klaus Werner🇫🇷 · Meng Yue🇨🇳

    Dileptons, as an electromagnetic probe, are crucial to study the properties of a Quark-Gluon Plasma (QGP) created in heavy ion collisions. We calculated the invariant mass spectra and the anisotropic emission of thermal dielectrons from Au+Au collisions at the Relativistic Heavy Ion Collider (RHIC) energy ~GeV based on EPOS3. This approach provides a realistic (3+1)-dimensional event-by-event viscous hydrodynamic description of the expanding hot and dense matter with a very particular initial condition, and a large set of hadron data and direct photons (besides and !) can be successfully reproduced. Thermal dilepton emission from both the QGP phase and the hadronic gas are considered, with the emission rates based on Lattice QCD and a vector meson model, respectively. We find that the computed invariant mass spectra (thermal contribution + STAR cocktail) can reproduce the measured ones from STAR at different centralities. Different compared to other model predictions, the obtained elliptic flow of thermal dileptons is larger than the STAR measurement referring to all dileptons. We observe a clear centrality dependence of thermal dilepton not only for elliptic flow but also for higher orders. At a given centrality, of thermal dileptons decreases monotonically with for .

    hep-phnucl-th0 citations
  10. 10

    Small-x, Diffraction and Vector Mesons

    T. Lappi🇫🇮

    This talk discusses recent progress in some topics relevant for deep inelastic scattering at small x. We discuss first differences and similarities between conventional collinear factorization and the dipole picture of deep inelastic scattering. Many of the recent theoretical advances at small x are related to taking calculations in the nonlinear saturation regime to next-to-leading order accuracy in the QCD coupling. On the experimental side significant recent progress has been made in exclusive and diffractive processes, in particular in ultraperipheral nucleus-nucleus collisions.

    hep-phnucl-thPoS(2015)·0 citations
  11. 11

    Scale-Invariant Hidden Local Symmetry, Topology Change and Dense Baryonic Matter

    Won-Gi Paeng🇰🇷 · Thomas T. S. Kuo🇺🇸 · Hyun Kyu Lee🇰🇷 · Mannque Rho🇫🇷

    When scale symmetry is implemented into hidden local symmetry in low-energy strong interactions to arrive at a scale-invariant hidden local symmetric (HLS) theory, the scalar may be interpreted as pseudo-Nambu-Goldstone (pNG) boson, i.e., dilaton, of spontaneously broken scale invariance, joining the pseudo-scalar pNG bosons and the matter fields as relevant degrees of freedom. Implementing the skyrmion-half-skyrmion transition predicted at large in QCD at a density roughly twice the nuclear matter density found in the crystal simulation of dense skyrmion matter, we determine the intrinsically density-dependent (IDD) "bare parameters" of the scale-invariant HLS Lagrangian matched to QCD at a matching scale . The resulting effective Lagrangian, with the parameters scaling with the density of the system, is applied to nuclear matter and dense baryonic matter relevant to massive compact stars by means of the double-decimation renormalization-group formalism. We satisfactorily post-dict the properties of normal nuclear matter and more significantly {\it predict} the EoS of dense compact-star matter that quantitatively accounts for the presently available data coming from both the terrestrial and space laboratories. We interpret the resulting structure of compact-star matter as revealing how the combination of hidden-scale symmetry and hidden local symmetry manifests itself in compressed baryonic matter.

    hep-phnucl-thPRC(2016)·48 citations
  12. 12

    Debye mass at the QCD transition in the PNJL model

    J. Jankowski🇵🇱 · D. Blaschke🇷🇺 · O. Kaczmarek🇩🇪

    We consider colour-electric screening as expressed by the quark contribution to the Debye mass calculated in a PNJL model with emphasis on confining and chiral symmetry breaking effects. We observe that the screening mass is entirely determined by the nonperturbative quark distribution function and temperature dependent QCD running coupling. The role of the gluon background (Polyakov loop) is to provide strong suppression of the number of charge carriers below the transition temperature, as an effect of confinement, while the temperature dependent dynamical quark mass contributes additional suppression, as an effect of chiral symmetry breaking. An alternative derivation of this result from a modified kinetic theory is given, which allows for a slight generalization and explicit contact with perturbative QCD. This gives the possibility to gain insights into the colour screening mechanism in the region near the QCD pseudocritical temperature and to provide a guideline for the interpretation of lattice QCD data.

    hep-phhep-lathep-thnucl-th3 citations
  13. 13

    Two-Step Electroweak Baryogenesis

    Satoru Inoue🇺🇸 · Grigory Ovanesyan🇺🇸 · Michael J. Ramsey-Musolf🇺🇸

    We analyze electroweak baryogenesis during a two-step electroweak symmetry breaking transition, wherein the baryon asymmetry is generated during the first step and preserved during the second. Focusing on the dynamics of CP-violation required for asymmetry generation, we discuss general considerations for successful two-step baryogenesis. Using a concrete model realization, we illustrate in detail the viability of this scenario and the implications for present and future electric dipole moment (EDM) searches. We find that CP-violation associated with a partially excluded sector may yield the observed baryon asymmetry while evading present and future EDM constraints.

    hep-phhep-exnucl-exnucl-thPRD(2016)·102 citations
  14. 14

    Exploring properties of high-density matter through remnants of neutron-star mergers

    Andreas Bauswein🇬🇷 · Nikolaos Stergioulas🇬🇷 · Hans-Thomas Janka🇩🇪

    Remnants of neutron-star mergers are essentially massive, hot, differentially rotating neutron stars, which are initially strongly oscillating. They represent a unique probe for high-density matter because the oscillations are detectable via gravitational-wave measurements and are strongly dependent on the equation of state. The impact of the equation of state is apparent in the frequency of the dominant oscillation mode of the remnant. For a fixed total binary mass a tight relation between the dominant postmerger frequency and the radii of nonrotating neutron stars exists. Inferring observationally the dominant postmerger frequency thus determines neutron star radii with high accuracy of the order of a few hundred meters. By considering symmetric and asymmetric binaries of the same chirp mass, we show that the knowledge of the binary mass ratio is not critical for this kind of radius measurements. We summarize different possibilities to deduce the maximum mass of nonrotating neutron stars. We clarify the nature of the three most prominent features of the postmerger gravitational-wave spectrum and argue that the merger remnant can be considered to be a single, isolated, self-gravitating object that can be described by concepts of asteroseismology. The understanding of the different mechanisms shaping the gravitational-wave signal yields a physically motivated analytic model of the gravitational-wave emission, which may form the basis for template-based gravitational-wave data analysis. We explore the observational consequences of a scenario of two families of compact stars including hadronic and quark stars. We find that this scenario leaves a distinctive imprint on the postmerger gravitational-wave signal. In particular, a strong discontinuity in the dominant postmerger frequency as function of the total mass will be a strong indication for two families of compact stars. (abridged)

    astro-ph.HEastro-ph.SRhep-phnucl-thEPJA(2016)·162 citations
  15. 15

    From quark drops to quark stars: some aspects of the role of quark matter in compact stars

    Germán Lugones🇧🇷

    We review some recent results about the mechanism of deconfinement of hadronic matter into quark matter in cold neutron stars and protoneutron stars. We discuss the role of finite size effects and the relevance of temperature and density fluctuations on the nucleation process. We also examine the importance of surface effects for mixed phases in hybrid stars. A small drop of quark matter nucleated at the core of a compact star may grow if the conversion is sufficiently exothermic. In such a case, it may trigger the burning of the stellar core and even the whole star if quark matter is absolutely stable. We explore the physical processes that occur inside the flame and analyze the hydrodynamic evolution of the combustion front. In the last part of this review, we focus on hybrid stars using the Nambu-Jona-Lasinio (NJL) model with scalar, vector and 't Hooft interactions, paying particular attention to a generalized non-standard procedure for the choice of the 'bag constant'. We also describe the non-radial oscillation modes of hadronic, hybrid and strange stars with maximum masses above and show that the frequency of the and fluid modes contains key information about the internal composition of compact objects.

    astro-ph.HEnucl-thEPJA(2016)·51 citations
  16. 16

    The sigma meson from lattice QCD with two-pion interpolating operators

    Dean Howarth🇺🇸 · Joel Giedt🇺🇸

    In this article we describe our studies of the sigma meson, f_0(500), using two-pion correlation functions. We use lattice quantum chromodynamics in the quenched approximation with so-called clover fermions. By working at unphysical pion masses we are able to identify a would-be resonance with mass less than , and then extrapolate to the physical point. We include the most important annihilation diagram, which is "partially disconnnected" or "single annihilation." Because this diagram is quite expensive to compute, we introduce a somewhat novel technique for the computation of all-to-all diagrams, based on momentum sources and a truncation in momentum space. In practice, we use only modes, so the method reduces to wall sources. At the point where the mass of the pion takes its physical value, we find a resonance in the two-pion channel with a mass of approximately MeV, consistent with the expected properties of the sigma meson, given the approximations we are making.

    hep-lathep-phnucl-thInt.J.Mod.Phys.C(2017)·14 citations
  17. 17

    Polarization in Polarized Proton-Proton Collisions at RHIC

    Gouranga C. Nayak🇺🇸

    We study inclusive production with definite polarizations in polarized proton-proton collisions at = 200 GeV and 500 GeV at RHIC by using non-relativistic QCD (NRQCD) color-octet mechanism. We present results of rapidity distribution of , and production with specific polarizations in polarized p-p collisions at RHIC within the PHENIX detector acceptance range. We also present the corresponding results for the spin asymmetries.

    hep-phhep-exnucl-exnucl-thPhys.Part.Nucl.Lett.(2017)·2 citations
  18. 18

    Unitary Limit of Two-Nucleon Interactions in Strong Magnetic Fields

    William Detmold🇺🇸 · Kostas Orginos🇺🇸 · Assumpta Parreno🇪🇸 · Martin J. Savage🇺🇸 · Brian C. Tiburzi🇺🇸 · Silas R. Beane🇺🇸 · Emmanuel Chang🇺🇸

    Two-nucleon systems are shown to exhibit large scattering lengths in strong magnetic fields at unphysical quark masses, and the trends toward the physical values indicate that such features may exist in nature. Lattice QCD calculations of the energies of one and two nucleons systems are performed at pion masses of and 806 MeV in uniform, time-independent magnetic fields of strength {\bf B}| \sim 10^{19}10^{20}$ Gauss to determine the response of these hadronic systems to large magnetic fields. Fields of this strength may exist inside magnetars and in peripheral relativistic heavy ion collisions, and the unitary behavior at large scattering lengths may have important consequences for these systems.

    hep-lathep-phnucl-thPRL(2016)·32 citations

Affiliations

first authorsco-authorsvia INSPIRE