PaperPanorama

Nuclear Theory·nucl-th

Monday·January 21, 2019

10 papers7 primary·3 cross-listed

  1. 08

    Rapidity dependent transverse momentum spectra of heavy quarkonia produced in small collision systems at the LHC

    Li-Na Gao🇨🇳 · Fu-Hu Liu🇨🇳 · Bao-Chun Li🇨🇳

    The rapidity dependent transverse momentum spectra of heavy quarkonia (J/psi and Upsilon mesons) produced in small collision systems such as proton-proton (pp) and proton-lead (p-Pb) collisions at center-of-mass energy (per nucleon pair) 5-13 TeV are described by a two-component statistical model which is based on the Tsallis statistics and inverse power-law. The experimental data measured by the LHCb Collaboration at the Large Hadron Collider (LHC) are well fitted by the model results. The related parameters are obtained and the dependences of parameters on rapidity are analyzed.

    hep-phhep-exnucl-exnucl-thAdv.High Energy Phys.(2019)·6 citations
  2. 09

    Nucleon resonance production in the reaction

    Jin-Quan Fan · Shao-Fei · Chen · Bo-Chao Liu

    In this work, we perform a study of nucleon resonance production in the reaction within an effective Lagrangian approach. In our model, we consider the excitation of the , , and in the intermediate state and the background term. We find that this reaction is dominated by the excitation of the in the near threshold region. Especially, we study the possible role of the scalar meson exchange in this reaction. It is found that the exchange may give a significant contribution and the parity asymmetry can be used to identify its role in this reaction.

    hep-phnucl-thPRC(2019)·11 citations
  3. 10

    Nuclear Charge Radii of B

    Bernhard Maaß · Thomas Hüther · Jan Krause · Jörg Krämer · Kristian König · Alessandro Lovato · Peter Müller · Mariusz Puchalski · Krzysztof Pachucki · Robert Roth · Rodolfo Sánchez · Felix Sommer · R. B. Wiringa · Wilfried Nörtershäuser

    The first determination of the nuclear charge radius by laser spectroscopy for a five-electron system is reported. This is achieved by combining high-accuracy ab initio mass-shift calculations and a high-resolution measurement of the isotope shift in the ground state transition in boron atoms. Accuracy is increased by orders of magnitude for the stable isotopes B and the results are used to extract their difference in the mean-square charge radius . The result is qualitatively explained by a possible cluster structure of the boron nuclei and quantitatively used as a benchmark for new ab initio nuclear structure calculations using the no-core shell model and Green's function Monte Carlo approaches.

    physics.atom-phnucl-thPRL(2019)·34 citations

Affiliations

first authorsco-authorsvia INSPIRE