PaperPanorama

Nuclear Theory·nucl-th

Friday·February 12, 2016

8 papers6 primary·2 cross-listed

  1. 01

    Toward a consistent evolution of the quark-gluon plasma and heavy quarks

    Marlene Nahrgang🇺🇸 · Jörg Aichelin🇫🇷 · Pol Bernard Gossiaux🇫🇷 · Klaus Werner🇫🇷

    Heavy-quark observables in ultrarelativistic heavy-ion collisions, like the nuclear modification factor and the elliptic flow, give insight into the mechanisms of high-momentum suppression and low-momentum thermalization of heavy quarks. Here, we present a global study of these two observables within a coupled approach of the heavy-quark propagation in a realistic fluid dynamical medium, MC@sHQ+EPOS2, and compare to experimental data from RHIC and LHC experiments. The heavy quarks scatter elastically and inelastically with the quasiparticles of the quark-gluon plasma (QGP), which are represented consistently with the underlying equation of state. We examine two scenarios: first, we interpret the lattice QCD equation of state as a sum of partonic and hadronic contributions, and second, as a gas of massive partonic quasiparticles. It is observed that independent of their momentum the energy loss of heavy quarks depends strongly on how the lattice QCD equation of state is translated into degrees of freedom of the QGP.

    nucl-thhep-phPRC(2016)·36 citations
  2. 02

    Asymptotic normalization coefficients for from the peripheral (,) reaction and their astrophysical application

    O. Tojiboev · R. Yarmukhamedov · S. V. Artemov · S. B. Sakuta

    The proton transfer (,) reaction at the energy of 4.5 MeV (c.m.) has been analysed within the modified DWBA. New estimates and their uncertainties are obtained for values of the asymptotic normalization coefficients for , the astrophysical factor and the s-wave scattering lengths.

    nucl-thPRC(2016)·13 citations
  3. 04

    Calculation of Energy Spectrum of 12C Isotope by Relativistic Cluster model

    Nafiseh Roshanbakht · Mohammad Reza Shojaei

    In this paper, we have calculated the energy spectrum of 12C isotope by cluster model. The experimental results show that the "Hoyle" state at 7.65 MeV in 12C isotope has a well-developed three-alpha structure. Hence, we select a three-body system and for interaction between the clusters we use modified Yukawa potential plus coulomb potential. Then, we solve the relativistic Klein-Gordon equation using Nikiforov-Uvarov method to calculate the energy spectrum. Finally, the calculated results are compared with the experimental data. The results show that the isotope 12C should be considered as consisting of three-alpha cluster and the modified Yukawa potential is adaptable for cluster interactions.

    nucl-thPramana(2016)·5 citations
  4. 05

    Event-by-event hydrodynamics jet energy loss: A solution to the puzzle

    Jacquelyn Noronha-Hostler (Houston U.)🇺🇸 · Barbara Betz (Frankfurt U.)🇩🇪 · Jorge Noronha (Sao Paulo U.)🇧🇷 · Miklos Gyulassy (LBNL, NSD and Columbia U. and CCNU, Wuhan, Inst. Part. Phys.)🇺🇸

    High GeV elliptic flow, which is experimentally measured via the correlation between soft and hard hadrons, receives competing contributions from event-by-event fluctuations of the low elliptic flow and event plane angle fluctuations in the soft sector. In this paper, a proper account of these event-by-event fluctuations in the soft sector, modeled via viscous hydrodynamics, is combined with a jet energy loss model to reveal that the positive contribution from low fluctuations overwhelms the negative contributions from event plane fluctuations. This leads to an enhancement of high GeV elliptic flow in comparison to previous calculations and provides a natural solution to the decade long high puzzle. We also present the first theoretical calculation of high , which is shown to be compatible with current LHC data. Furthermore, we discuss how short wavelength jet-medium physics can be deconvoluted from the physics of soft, bulk event-by-event flow observables using event shape engineering techniques.

    nucl-thhep-phnucl-exPRL(2016)·140 citations
  5. 06

    From QCD to Physical Resonances

    Daniel R. Bolton🇺🇸 · Raúl A. Briceño🇺🇸 · David J. Wilson🇬🇧

    In this talk, we present the first chiral extrapolation of a resonant scattering amplitude obtained from lattice QCD. Finite-volume spectra, determined by the Hadron Spectrum Collaboration at MeV, for the isotriplet channel are analyzed using the Lüscher method to determine the infinite-volume scattering amplitude. Unitarized Chiral Perturbation Theory is then used to extrapolate the scattering amplitude to the physical light quark masses. The viability of this procedure is demonstrated by its agreement with the experimentally determined scattering phase shift up to center-of-mass energies of 1.2 GeV. Finally, we analytically continue the amplitude to the complex plane to obtain the -pole at MeV.

    nucl-thhep-latAIP Conf.Proc.(2016)·1 citation

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