PaperPanorama

Nuclear Theory·nucl-th

Tuesday·August 17, 2021

10 papers4 primary·6 cross-listed

  1. 01

    Systematic investigation of the high-spin structures in the odd-odd nuclei Re by a particle-number conserving method

    Zhen-Hua Zhang · Shuo-Yi Liu

    The recently observed two and four-quasiparticle high-spin rotational bands in the odd-odd nuclei Re are investigated using the cranked shell model with pairing correlations treated by a particle-number conserving method. The experimental moments of inertia and alignments can be reproduced well by the present calculation if appropriate bandhead spins and configurations are assigned for these bands, which in turn confirms their spin and configuration assignments. It is found that the bandhead spins of those two rotational bands observed in Re~[Li {\it et al.}, Phys. Rev. C 92 014310 (2015)] should be both increased by to get in consistent with the systematics of the experimental and calculated moments of inertia for the same configurations in Re. The variations of the backbendings/upbendings with increasing neutron number in these nuclei are investigated. The level crossing mechanism is well understood by analysing the variations of the occupation probabilities of the single-particle states close to the Fermi surface and their contributions to the angular momentum alignment with rotational frequency. In addition, the influence of the deformation driving effects of the proton () orbtial on the level crossing in Re is also discussed.

    nucl-thNPA(2021)·0 citations
  2. 02

    Nuclei with up to nucleons with artificial neural network wave functions

    Alex Gnech🇺🇸 · Corey Adams🇺🇸 · Nicholas Brawand🇺🇸 · Giuseppe Carleo🇨🇭 · Alessandro Lovato🇺🇸 · Noemi Rocco🇺🇸

    The ground-breaking works of Weinberg have opened the way to calculations of atomic nuclei that are based on systematically improvable Hamiltonians. Solving the associated many-body Schrödinger equation involves non-trivial difficulties, due to the non-perturbative nature and strong spin-isospin dependence of nuclear interactions. Artificial neural networks have proven to be able to compactly represent the wave functions of nuclei with up to nucleons. In this work, we extend this approach to Li and He nuclei, using as input a leading-order pionless effective field theory Hamiltonian. We successfully benchmark their binding energies, point-nucleon densities, and radii with the highly accurate hyperspherical harmonics method.

    nucl-thcond-mat.dis-nnquant-phFew Body Syst.(2022)·47 citations
  3. 03

    Connecting Theory to Heavy Ion Experiment

    Gaoqing Cao🇨🇳 · Iurii Karpenko🇨🇿

    Only a fraction of all and hyperons detected in heavy ion collisions are produced from the hot and dense matter directly at the hadronization. These hyperons are called the {\em primary} hyperons. The rest of the hyperons are products of the decays of heavier hyperon states, which in turn are produced at the hadronization. As such, the polarization of only primary hyperons can be described with the formulae introduced in Sect. 8. For the rest of the hyperons, the polarization transfer in the decays has to be computed, and convoluted with the polarization of the mother hyperon. In this chapter, a derivation of the polarization transfer coefficients, as well as the computation of the mean polarization of all hyperons detected in the experiment, is presented. The chapter is concluded with the calculation of the resonance contributions to the global and local polarizations.

    nucl-thhep-phLect.Notes Phys.(2021)·1 citation
  4. 04

    Dynamics of in-medium quarkonia in SU(3) and SU(2) gauge theories

    Yukinao Akamatsu🇯🇵 · Masayuki Asakawa🇯🇵 · Shiori Kajimoto🇯🇵

    Decoherence dynamics of quarkonia is studied in the high-temperature deconfined phase of SU() gauge theories. In particular, we analyze the symmetry properties of SU() stochastic potential model and find a novel "event-by-event" symmetry for case, similar to the -parity of hadronic systems. This novel symmetry constrains the relation between diagonal and off-diagonal components of quarkonium density matrix, leaving the latter to be finite at late times. We also present one-dimensional numerical simulation of the model, which indicates the usefulness of the complex potential simulations for the quarkonium survival probabilities in relativistic heavy-ion collisions, provided that the effect of dissipation can be neglected.

    nucl-thcond-mat.quant-gashep-phnucl-ex+1PRD(2022)·15 citations

Affiliations

first authorsco-authorsvia INSPIRE