PaperPanorama

Nuclear Theory·nucl-th

Monday·June 15, 2015

9 papers6 primary·3 cross-listed

  1. 07

    Nuclear fusion in the deuterated cores of inflated hot Jupiters

    Rachid Ouyed (1) · Prashanth Jaikumar (2) ((1) Department of Physics and Astronomy, University of Calgary, Canada, (2) Department of Physics and Astronomy, California State University Long Beach, CA, USA)

    Ouyed et al. (1998) proposed Deuterium (DD) fusion at the core-mantle interface of giant planets as a mechanism to explain their observed heat excess. But rather high interior temperatures (~10^5 K) and a stratified D layer are needed, making such a scenario unlikely. In this paper, we re-examine DD fusion, with the addition of screening effects pertinent to a deuterated core containing ice and some heavy elements. This alleviates the extreme temperature constraint and removes the requirement of a stratified D layer. As an application, we propose that, if their core temperatures are a few times 10^4 K and core composition is chemically inhomogeneous, the observed inflated size of some giant exoplanets ("hot Jupiters") may be linked to screened DD fusion occurring deep in the interior. Application of an analytic evolution model suggests that the amount of inflation from this effect can be important if there is sufficient rock-ice in the core, making DD fusion an effective extra internal energy source for radius inflation. The mechanism of screened DD fusion, operating in the above temperature range, is generally consistent with the trend in radius anomaly with planetary equilibrium temperature , and also depends on planetary mass. Although we do not consider the effect of incident stellar flux, we expect that a minimum level of irradiation is necessary to trigger core erosion and subsequent DD fusion inside the planet. Since DD fusion is quite sensitive to the screening potential inferred from laboratory experiments, observations of inflated hot Jupiters may help constrain screening effects in the cores of giant planets.

    astro-ph.EPnucl-thAstrophys.Space Sci.(2016)·1 citation
  2. 08

    Heavy-flavour and quarkonium production in the LHC era: from proton-proton to heavy-ion collisions

    A. Andronic🇩🇪 · F. Arleo🇫🇷 · R. Arnaldi🇮🇹 · A. Beraudo🇮🇹 · E. Bruna🇮🇹 · D. Caffarri🇨🇭 · Z. Conesa del Valle🇫🇷 · J.G. Contreras🇨🇿 · T. Dahms🇩🇪 · A. Dainese🇮🇹 · M. Djordjevic🇷🇸 · E.G. Ferreiro🇪🇸 and 44 other authors

    This report reviews the study of open heavy-flavour and quarkonium production in high-energy hadronic collisions, as tools to investigate fundamental aspects of Quantum Chromodynamics, from the proton and nucleus structure at high energy to deconfinement and the properties of the Quark-Gluon Plasma. Emphasis is given to the lessons learnt from LHC Run 1 results, which are reviewed in a global picture with the results from SPS and RHIC at lower energies, as well as to the questions to be addressed in the future. The report covers heavy flavour and quarkonium production in proton-proton, proton-nucleus and nucleus-nucleus collisions. This includes discussion of the effects of hot and cold strongly interacting matter, quarkonium photo-production in nucleus-nucleus collisions and perspectives on the study of heavy flavour and quarkonium with upgrades of existing experiments and new experiments. The report results from the activity of the SaporeGravis network of the I3 Hadron Physics programme of the European Union 7th Framework Programme.

    nucl-exhep-exhep-phnucl-thEPJC(2016)·814 citations
  3. 09

    Degeneracies of particle and nuclear physics uncertainties in neutrinoless double beta decay

    E. Lisi (INFN, Bari)🇮🇹 · A. Rotunno (U. of Bari)🇮🇹 · F. Simkovic (Comenius U. & JINR & CTU Prague)🇸🇰

    Theoretical estimates for the half life of neutrinoless double beta decay in candidate nuclei are affected by both particle and nuclear physics uncertainties, which may complicate the interpretation of decay signals or limits. We study such uncertainties and their degeneracies in the following context: three nuclei of great interest for large-scale experiments (76-Ge, 130-Te, 136-Xe), two representative particle physics mechanisms (light and heavy Majorana neutrino exchange), and a large set of nuclear matrix elements (NME), computed within the quasiparticle random phase approximation (QRPA). It turns out that the main theoretical uncertainties, associated with the effective axial coupling g_A and with the nucleon-nucleon potential, can be parametrized in terms of NME rescaling factors, up to small residuals. From this parametrization, the following QRPA features emerge: (1) the NME dependence on g_A is milder than quadratic; (2) in each of the two mechanisms, the relevant lepton number violating parameter is largely degenerate with the NME rescaling factors; and (3) the light and heavy neutrino exchange mechanisms are basically degenerate in the above three nuclei. We comment on the challenging theoretical and experimental improvements required to reduce such particle and nuclear physics uncertainties and their degeneracies.

    hep-phhep-exnucl-exnucl-thPRD(2015)·29 citations

Affiliations

first authorsco-authorsvia INSPIRE