PaperPanorama

Nuclear Theory·nucl-th

Monday·September 28, 2015

14 papers6 primary·8 cross-listed

  1. 07

    Heavy Quarkonium in a Holographic Basis

    Yang Li🇺🇸 · Pieter Maris🇺🇸 · Xingbo Zhao🇺🇸 · James P. Vary🇺🇸

    We study the heavy quarkonium within the basis light-front quantization approach. We implement the one-gluon exchange interaction and a confining potential inspired by light-front holography. We adopt the holographic light-front wavefunction (LFWF) as our basis function and solve the non-perturbative dynamics by diagonalizing the Hamiltonian matrix. We obtain the mass spectrum for charmonium and bottomonium. With the obtained LFWFs, we also compute the decay constants and the charge form factors for selected eigenstates. The results are compared with the experimental measurements and with other established methods.

    hep-phnucl-thPLB(2016)·173 citations
  2. 08

    Dynamical transition between two mesons and a tetraquark

    I. A. Toledano Juarez🇲🇽 · G. Toledo Sanchez🇲🇽

    We consider a system composed of two identical light quarks () and two identical antiquarks () that can be linked either as two mesons or as a tetraquark, incorporating quantum correlations between identical particles and an effective many-body potential between particles. We perform a 3-D Monte Carlo simulation of the system, considering the configurations allowed to form: i) Only two mesons, ii) Only tetraquark and iii) two mesons and tetraquark . We characterize each case and determine whether it is energetically more favorable to form a tetraquark or two mesons, as a function of the interparticle separation distance which, for a fixed number of particles, can be identified as a particle density. We determine how the two mesons, which dominate the low density regime, mixes with a tetraquark state as the density increases. Properties like the mean square radius and the two-particle correlation function are found to reflect such transition, and we provide a parameterization of the diquark correlation function in the isolated case. We track the dynamical flipping among configurations to determine the recombination probability, exhibiting the importance of the tetraquark state. We analize the four-body potential evolution and show that its linear behavior is preserved, although the slope can reflect the presence of a mixed state. Results are shown for several light-quarks to heavy-antiquarks mass ratios whenever they are found to be relevant.

    hep-phnucl-thPRC(2015)·1 citation
  3. 09

    Nucleosynthesis in the Ejecta of Neutron Star Mergers

    Dirk Martin · Albino Perego · Almudena Arcones · Oleg Korobkin · Friedrich-Karl Thielemann

    Heavy elements like gold, platinum or uranium are produced in the r-process, which needs neutron-rich and explosive environments. Neutron star mergers are a promising candidate for an r-process site. They exhibit three different channels for matter ejection fulfilling these conditions: dynamic ejecta due to tidal torques, neutrino-driven winds and evaporating matter from the accretion disk. We present a first study of the integrated nucleosynthesis for a neutrino-driven wind from a neutron star merger with a hyper-massive neutron star. Trajectories from a recent hydrodynamical simulation are divided into four different angle regions and post-processed with a reaction network. We find that the electron fraction varies around , but its distribution differs for every angle of ejection. Hence, the wind ejecta do not undergo a robust r-process, but rather possess distinct nucleosynthesis yields depending on the angle range. Compared to the dynamic ejecta, a smaller amount of neutron-rich matter gets unbound, but the production of lighter heavy elements with in the neutrino-driven wind can complement the strong r-process of the dynamic ejecta.

    astro-ph.SRastro-ph.HEnucl-thPoS(2015)·5 citations
  4. 10

    Undersaturation of quarks at early stages of relativistic nuclear collisions: the hot glue initial scenario and its observable signatures

    H. Stoecker🇩🇪 · M. Beitel🇩🇪 · T.S. Biró🇭🇺 · L.P. Csernai🇳🇴 · K. Gallmeister🇩🇪 · M.I. Gorenstein🇩🇪 · C. Greiner🇩🇪 · I.N. Mishustin🇩🇪 · M. Panero🇮🇹 · S. Raha🇮🇳 · L.M. Satarov🇩🇪 · S. Schramm🇩🇪 and 8 other authors

    The early stage of high multiplicity nuclear collisions is represented by a nearly quarkless, hot, deconfined pure gluon plasma. This new scenario should be characterized by a suppression of high photons and dileptons as well as by reduced baryon to meson ratios. We present the numerical results for central Pb+Pb collisions at the LHC energies by using the ideal Bjorken hydrodynamics with time-dependent quark fugacity. It is shown that about 25\% of final total entropy is generated during the hydrodynamic evolution of chemically undersaturated quark-gluon plasma.

    hep-phhep-exhep-latnucl-ex+1Astron.Nachr.(2015)·17 citations
  5. 11

    Physical observables in the decay

    Nurgul Habyl🇰🇿 · Thomas Gutsche🇩🇪 · Mikhail A. Ivanov🇷🇺 · Jürgen G. Körner🇩🇪 · Valery E. Lyubovitskij🇷🇺 · Pietro Santorelli🇮🇹

    We analyze the tauonic semileptonic baryon decays with particular emphasis on the lepton helicity flip contributions which vanish for zero lepton masses. We calculate the total rate, differential decay distributions, the longitudinal and transverse polarization components of the and the , and the lepton-side forward-backward asymmetries. We use the covariant confined quark model to provide numerical results on these observables.

    hep-phnucl-thInt.J.Mod.Phys.Conf.Ser.(2015)·7 citations
  6. 12

    Jet-Medium Interactions at NLO in a Weakly-Coupled Quark-Gluon Plasma

    Jacopo Ghiglieri🇨🇭 · Guy D. Moore🇩🇪 · Derek Teaney🇺🇸

    We present an extension to next-to-leading order in the strong coupling constant of the AMY effective kinetic approach to the energy loss of high momentum particles in the quark-gluon plasma. At leading order, the transport of jet-like particles is determined by elastic scattering with the thermal constituents, and by inelastic collinear splittings induced by the medium. We reorganize this description into collinear splittings, high-momentum-transfer scatterings, drag and diffusion, and particle conversions (momentum-preserving identity-changing processes). We show that this reorganized description remains valid to NLO in , and compute the appropriate modifications of the drag, diffusion, particle conversion, and inelastic splitting coefficients. In addition, a new kinematic regime opens at NLO for wider-angle collinear bremsstrahlung. These semi-collinear emissions smoothly interpolate between the leading order high-momentum-transfer scatterings and collinear splittings. To organize the calculation, we introduce a set of Wilson line operators on the light-cone which determine the diffusion and identity changing coefficients, and we show how to evaluate these operators at NLO.

    hep-phnucl-thJHEP(2016)·107 citations
  7. 13

    Self-similar inverse cascade of magnetic helicity driven by the chiral anomaly

    Yuji Hirono🇺🇸 · Dmitri Kharzeev🇺🇸 · Yi Yin🇺🇸

    For systems with charged chiral fermions, the imbalance of chirality in the presence of magnetic field generates an electric current - this is the Chiral Magnetic Effect (CME). We study the dynamical real-time evolution of electromagnetic fields coupled by the anomaly to the chiral charge density and the CME current by solving the Maxwell-Chern-Simons equations. We find that the CME induces the inverse cascade of magnetic helicity towards the large distances, and that at late times this cascade becomes self-similar, with universal exponents. We also find that in terms of gauge field topology the inverse cascade represents the transition from linked electric and magnetic fields (Hopfions) to the knotted configuration of magnetic field (Chandrasekhar-Kendall states). The magnetic reconnections are accompanied by the pulses of the CME current directed along the magnetic field lines. We devise an experimental signature of these phenomena in heavy ion collisions, and speculate about implications for condensed matter systems.

    hep-thcond-mat.softhep-phnucl-thPRD(2015)·117 citations
  8. 14

    Fractional Authorship in Nuclear Physics

    B. Pritychenko

    Large, multi-institutional groups or collaborations of scientists are engaged in nuclear physics research projects, and the number of research facilities is dwindling. These collaborations have their own authorship rules, and they produce a large number of highly-cited papers. Multiple authorship of nuclear physics publications creates a problem with the assessment of an individual author's productivity relative to his/her colleagues and renders ineffective a performance metrics solely based on annual publication and citation counts. Many institutions are increasingly relying on the total number of first-author papers; however, this approach becomes counterproductive for large research collaborations with an alphabetical order of authors. A concept of fractional authorship (the claiming of credit for authorship by more than one individual) helps to clarify this issue by providing a more complete picture of research activities. In the present work, nuclear physics fractional and total authorships have been investigated using nuclear data mining techniques. Historic total and fractional authorship averages have been extracted from the Nuclear Science References (NSR) database, and the current range of fractional contributions has been deduced. The results of this study and their implications are discussed and conclusions presented.

    cs.DLnucl-thphysics.soc-ph0 citations

Affiliations

first authorsco-authorsvia INSPIRE