PaperPanorama

Nuclear Theory·nucl-th

Monday·January 26, 2015

6 papers4 primary·2 cross-listed

  1. 05

    [Submitted on 23 Jan 2015] (cross-list from hep-ph)

    Top-quark production in proton-nucleus and nucleus-nucleus collisions at LHC energies and beyond

    David d'Enterria🇨🇭 · Krisztian Krajczar🇨🇭 · Hannu Paukkunen🇫🇮

    Single and pair top-quark production in proton-lead (p-Pb) and lead-lead (Pb-Pb) collisions at the CERN Large Hadron Collider (LHC) and future circular collider (FCC) energies, are studied with next-to-leading-order perturbative QCD calculations including nuclear parton distribution functions. At the LHC, the pair-production cross sections amount to sigma(t-tbar) = 3.4 mub in Pb-Pb at sqrt(s) = 5.5 TeV, and sigma(t-tbar) = 60 nb in p-Pb at sqrt(s) = 8.8 TeV. At the FCC energies of sqrt(s) = 39 and 63 TeV, the same cross sections are factors of 90 and 55 times larger respectively. In the leptonic final-state t-tbar --> W+b W-bbar --> b bbar l+l- nu+nu-, after typical acceptance and efficiency cuts, one expects about 90 and 300 top-quarks per nominal LHC-year and 4.7 10^4 and 10^5 per FCC-year in Pb-Pb and p-Pb collisions respectively. The total t-tbar cross sections, dominated by gluon fusion processes, are enhanced by 3--8% in nuclear compared to p-p collisions due to an overall net gluon antishadowing, although different regions of their differential distributions are depleted due to shadowing or EMC-effect corrections. The rapidity distributions of the decay leptons in t-tbar processes can be used to reduce the uncertainty on the Pb gluon density at high virtualities by up to 30% at the LHC (full heavy-ion programme), and by 70% per FCC-year. The cross sections for single-top production in electroweak processes are also computed, yielding about a factor of 30 smaller number of measurable top-quarks after cuts, per system and per year.

    Comments:
    14 pages, 5 figs. Minor modifications. Version to appear in Phys.Lett.B
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); High Energy Physics — Experiment (hep-ex); Nuclear Experiment (nucl-ex); Nuclear Theory (nucl-th)
    arXiv:
    1501.05879 [pdf]
    PLB(2015)·61 citations
  2. 06

    [Submitted on 19 Jan 2015] (cross-list from cond-mat.mtrl-sci)

    The role of correlation entropy in nuclear fusion in liquid lithium, indium and mercury

    M. Coraddu · M. Lissia · P. Quarati · A. M. Scarfone

    Nuclear fusion cross-sections considerably higher than corresponding theoretical predictions are observed in low-energy experiments with metal matrix targets and accelerated deuteron beams. The cross-section increment is significantly higher for liquid than for solid targets. We propose that the same two-body correlation entropy used in evaluating the metal melting entropy explains the large liquid-solid difference of the effective screening potential that parameterizes the cross-section increment. This approach is applied to the specific case of the Li(d,)He reaction, whose measured screening potential liquid-solid difference is eV. Cross sections in the two metals with the highest two-body correlation entropy (In and Hg) have not yet been measured: increments of the cross sections in liquid relative to the ones in solid metals are estimated with the same procedure.

    Comments:
    7 pages, no figures. Published in Journal of Physics G: Nuclear and Particle Physics
    Subjects:
    cond-mat.mtrl-sci (cond-mat.mtrl-sci); Nuclear Experiment (nucl-ex); Nuclear Theory (nucl-th); Plasma Physics (physics.plasm-ph)
    arXiv:
    1501.05906 [pdf]
    J.Phys.G(2014)·0 citations

Affiliations

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