PaperPanorama

Nuclear Theory·nucl-th

Tuesday·June 14, 2016

11 papers6 primary·5 cross-listed

  1. 07

    Astromaterial Science and Nuclear Pasta

    M. E. Caplan · C. J. Horowitz

    We define `astromaterial science' as the study of materials in astronomical objects that are qualitatively denser than materials on earth. Astromaterials can have unique properties related to their large density, though they may be organized in ways similar to more conventional materials. By analogy to terrestrial materials, we divide our study of astromaterials into hard and soft and discuss one example of each. The hard astromaterial discussed here is a crystalline lattice, such as the Coulomb crystals in the interior of cold white dwarfs and in the crust of neutron stars, while the soft astromaterial is nuclear pasta found in the inner crusts of neutron stars. In particular, we discuss how molecular dynamics simulations have been used to calculate the properties of astromaterials to interpret observations of white dwarfs and neutron stars. Coulomb crystals are studied to understand how compact stars freeze. Their incredible strength may make crust "mountains" on rotating neutron stars a source for gravitational waves that the Laser Interferometer Gravitational-Wave Observatory (LIGO) may detect. Nuclear pasta is expected near the base of the neutron star crust at densities of g/cm. Competition between nuclear attraction and Coulomb repulsion rearranges neutrons and protons into complex non-spherical shapes such as sheets (lasagna) or tubes (spaghetti). Semi-classical molecular dynamics simulations of nuclear pasta have been used to study these phases and calculate their transport properties such as neutrino opacity, thermal conductivity, and electrical conductivity. Observations of neutron stars may be sensitive to these properties, and can be be used to interpret observations of supernova neutrinos, magnetic field decay, and crust cooling of accreting neutron stars. We end by comparing nuclear pasta shapes with some similar shapes seen in biological systems.

    astro-ph.HEcond-mat.mtrl-scicond-mat.softnucl-thRMP(2017)·110 citations
  2. 08

    Elastic and Transition Form Factors: Contact Interaction and Algebraic Model

    Marco A. Bedolla🇲🇽 · Khépani Raya🇲🇽 · J.J. Cobos-Martínez🇲🇽 · Adnan Bashir🇲🇽

    For the flavor-singlet heavy quark system of charmonia in the pseudoscalar () channel, we calculate the elastic (EFF) and transition form factors (TFF) () for a wide range of photon momentum transfer squared (). The framework for this analysis is provided by a symmetry-preserving Schwinger-Dyson equation (SDE) and Bethe-Salpeter equation (BSE) treatment of a vectorvector contact interaction (CI). We also employ an algebraic model (AM), developed earlier to describe the light quark systems. It correctly correlates infrared and ultraviolet dynamics of quantum chromodynamics (QCD). The CI results agree with the lattice data for low . For , the results start deviating from the lattice results by more than . for the EFF and for the TFF. We also present the results for the EFF, TFF as well as parton distribution amplitude for the AM. Wherever the comparison is possible, these results are in excellent agreement with the lattice, perturbative QCD, the results obtained through an SDE-BSE study, employing refined truncations, as well as the experimental findings of the BABAR experiment.

    hep-phnucl-thPRD(2016)·49 citations
  3. 09

    Pairing Phase Transitions of Matter under Rotation

    Yin Jiang🇺🇸 · Jinfeng Liao🇺🇸

    The phases and properties of matter under global rotation have attracted much interest recently. In this paper we investigate the pairing phenomena in a system of fermions under the presence of rotation. We find that there is a generic suppression effect on pairing states with zero angular momentum. We demonstrate this effect with the chiral condensation and the color superconductivity in hot dense QCD matter as explicit examples. In the case of chiral condensation, a new phase diagram in the temperature-rotation parameter space is found, with a nontrivial critical point.

    hep-phcond-mat.quant-gashep-thnucl-th+1PRL(2016)·190 citations
  4. 10

    Cumulants of Net-Proton, Net-Kaon and Net-Charge Multiplicity Distributions in Au+Au Collisions at RHIC BES Energies from UrQMD Model

    Ji Xu🇨🇳 · Shili Yu🇨🇳 · Feng Liu🇨🇳 · Xiaofeng Luo🇨🇳

    Fluctuations of conserved quantities are sensitive observables to probe the signature of QCD phase transition and critical point in heavy-ion collisions. With the UrQMD model, we have studied the centrality and energy dependence of various order cumulants and cumulant ratios (up to fourth order) of net-proton,net-charge and net-kaon multiplicity distributions in Au+Au collisions at = 7.7, 11.5, 19.6, 27, 39, 62.4, 200 GeV. The model results show that the production mechanism of the particles and anti-particles have significant impacts on the cumulants of net-particles multiplicity distributions and show strong energy dependence. We also made comparisons between model calculations and experimental data measured in the first phase of the beam energy scan (BES) program by the STAR experiment at RHIC. The comparisons indicate that the baryon conservation effect strongly suppress the cumulants of net-proton distributions at low energies and the non-monotonic energy dependence for the net-proton {\KV} at the most central Au+Au collisions measured by the STAR experiment can not be described by the UrQMD model. Since there has no physics of QCD phase transition and QCD critical point implemented in the UrQMD, the model results provide us baselines and qualitative estimates about the non-critical background contributions to the fluctuations observables in heavy-ion collisions.

    nucl-exhep-exhep-phnucl-thPRC(2016)·47 citations
  5. 11

    Change of nuclear configurations in the neutrinoless double- decay of Te Xe and Xe Ba

    J. P. Entwisle🇬🇧 · B. P. Kay🇺🇸 · A. Tamii🇯🇵 · S. Adachi🇯🇵 · N. Aoi🇯🇵 · J. A. Clark🇺🇸 · S. J. Freeman🇬🇧 · H. Fujita🇯🇵 · Y. Fujita🇯🇵 · T. Furuno🇯🇵 · T. Hashimoto🇰🇷 · C. R. Hoffman🇺🇸 and 15 other authors

    The change in the configuration of valence protons between the initial and final states in the neutrinoless double- decay of Te Xe and of Xe Ba has been determined by measuring the cross sections of the (,He) reaction with 101-MeV deuterons. Together with our recent determination of the relevant neutron configurations involved in the process, a quantitative comparison with the latest shell-model and interacting-boson-model calculations reveals significant discrepancies. These are the same calculations used to determine the nuclear matrix elements governing the rate of neutrinoless double- decay in these systems.

    nucl-exnucl-thPRC(2016)·37 citations

Affiliations

first authorsco-authorsvia INSPIRE