PaperPanorama

Nuclear Theory·nucl-th

Wednesday·March 7, 2018

10 papers4 primary·6 cross-listed

  1. 01

    Hot fusion reactions with deformed nuclei for synthesis of superheavy nuclei: an extension of the fusion-by-diffusion model

    K. Hagino

    The fusion-by-diffusion model proposed by Swiatecki {\it et al.} [Phys. Rev. C71, 014602 (2005)] has provided a simple and convenient tool to estimate evaporation residue cross sections for superheavy nuclei. I extend this model by taking into account deformation of the target nucleus, and discuss the role of orientation of deformed target in hot fusion reactions at energies around the Coulomb barrier. To this end, I introduce an injection point for the diffusion process over an inner barrier which depends on the orientation angle. I apply this model to the Ca+Cm reaction and show that the maximum of evaporation residue cross section appears at an energy slightly above the height of the capture barrier for the side collision, for which the effective inner barrier is considerably lower than that for the tip collision, thus enhancing the diffusion probability. I also discuss the energy dependence of the injection point, and show that a large part of the energy dependence found in the previous analyses can be attributed to the deformation effect of a target nucleus.

    nucl-thnucl-exPRC(2018)·40 citations
  2. 02

    decay properties of Og within the two-potential approach

    Jun-Gang Deng · Jie-Cheng Zhao · Jiu-Long Chen · Xi-Jun Wu · Xiao-Hua Li

    The present work is a continuations of our previous paper [J.-G. Deng, et al., Chin. Phys. C, {\bf41}: 124109 (2017)]. In present work, the decay half-life of unknown nucleus Og is predicted within the two-potential approach and the hindrance factors of all 20 even-even nuclei in the same region with Og, i.e. proton number and neutron number , from Cm to Og are extracted. The prediction is 1.09 ms within a factor of 5.12. In addition, based on the latest experimental data, a new set of parameters of decay hindrance factors for the even-even nuclei in this region considering the shell effect and proton-neutron interaction are obtained.

    nucl-thnucl-exCPC(2018)·19 citations
  3. 03

    Nuclear quantum shape-phase transitions in odd-mass systems

    S. Quan · Z. P. Li · D. Vretenar · J. Meng

    Microscopic signatures of nuclear ground-state shape phase transitions in odd-mass Eu isotopes are explored starting from excitation spectra and collective wave functions obtained by diagonalization of a core-quasiparticle coupling Hamiltonian based on energy density functionals. As functions of the physical control parameter -- the number of nucleons -- theoretical low-energy spectra, two-neutron separation energies, charge isotope shifts, spectroscopic quadrupole moments, and reduced transition matrix elements accurately reproduce available data, and exhibit more pronounced discontinuities at neutron number , compared to the adjacent even-even Sm and Gd isotopes. The enhancement of the first-order quantum phase transition in odd-mass systems can be attributed to a shape polarization effect of the unpaired proton which, at the critical neutron number, starts predominantly coupling to Gd core nuclei that are characterized by larger quadrupole deformation and weaker proton pairing correlations compared to the corresponding Sm isotopes.

    nucl-thnucl-exPRC(2018)·30 citations
  4. 04

    Electric structure of shallow D-wave states in Halo EFT

    J. Braun🇩🇪 · W. Elkamhawy🇩🇪 · R. Roth🇩🇪 · H.-W. Hammer🇩🇪

    We compute the electric form factors of one-neutron halo nuclei with shallow D-wave states up to next-to-leading order and the E2 transition from the S-wave to the D-wave state up to leading order in Halo Effective Field Theory (Halo EFT). The relevant degrees of freedom are the core and the halo neutron. The EFT expansion is carried out in powers of , where and denote the length scales of the core and the halo, respectively. We propose a power counting scenario for weakly-bound states in one-neutron Halo EFT and discuss its implications for higher partial waves in terms of universality. The scenario is applied to the first excited state and the ground state of . We obtain several universal correlations between electric observables and use data for the E2 transition together with ab initio results from the No-Core Shell Model to predict the quadrupole moment.

    nucl-thhep-phJ.Phys.G(2019)·11 citations

Affiliations

first authorsco-authorsvia INSPIRE