PaperPanorama

Nuclear Theory·nucl-th

Thursday·October 6, 2022

9 papers3 primary·6 cross-listed

  1. 01

    Systematic calculations of cluster radioactivity half-lives in trans-lead nuclei

    LinJing Qi · DongMeng Zhang · Song Luo · XiaoHua Li · XiJun Wu · ChunTian Liang

    In the present work, based on Wentzel-Kramers-Brillouin (WKB) theory, considering the cluster preformation probability (Pc), we systematically investigate the cluster radioactivity half-lives of 22 trans-lead nuclei ranging from 221Fr to 242Cm. As for Pc, when the mass number of the emitted cluster Ac<28, it is obtained by the exponential relationship of Pc to the alpha decay preformation probability Pa proposed by R.Blendowskeis et al. [Phys. Rev. Lett. 61, 1930 (1988)], while Pa is calculated through cluster-formation model (CFM). Whereas Ac >= 28, it is achieved through the charge-number dependence of Pc on the decay products proposed by Ren et al. [Phys. Rev. C 70, 034304 (2004)]. The half-lives of cluster radioactivity have been calculated by the density-dependent cluster model [Phys. Rev. C 70, 034304 (2004)] and by the unified formula of half-lives for alpha decay and cluster radioactivity [Phys. Rev. C 78, 044310 (2008)]. For comparison, a universal decay law (UDL) proposed by Qi et al. [Phys. Rev. C 80, 044326 (2009)], a semi-empirical model for both alpha decay and cluster radioactivity proposed by Santhosh [J. Phys. G: Nucl. Part. Phys. 35, 085102 (2008)] and a unified formula of half-lives for alpha decay and cluster radioactivity [Phys. Rev. C 78, 044310 (2008)] are also used. The calculated results in our work, Ni's formula as well as UDL can well reproduce the experimental data and are better than those in Santhosh's model. In addition, we extend this model to predict the half-lives for 51 nuclei, whose cluster radioactivity is energetically allowed or observed but yet not quantified in NUBASE2020.

    nucl-th0 citations
  2. 02

    Parity-doublet bands in the odd-\bm{} isotones \element{237}U and \element{239}Pu by a particle-number-conserving method based on the cranked shell model

    Jun Zhang · Xiao-Tao He

    Based on the reflection-asymmetric Nilsson potential, the parity-doublet rotational bands in odd- isotones \element{237}U and \element{239}Pu have been investigated by using the particle-number-conserving (PNC) method in the framework of the cranked shell model (CSM). The experimental kinematic moments of inertia (MOIs) and angular momentum alignments are reproduced very well by the PNC-CSM calculations. The significant differences of rotational properties between \element{237}U and \element{239}Pu are explained with the contribution of nucleons occupying proton octupole-correlation pairs of . The upbendings of moments of inertia of the parity-doublet bands in \element{237}U are due to the interference terms of alignments of protons occupying () and the high- intruder orbitals. The splittings between the simplex partner bands of the parity-doublet bands in both \element{237}U and \element{239}Pu result from the contribution of alignment of neutron occupying the () orbital.

    nucl-thnucl-exPRC(2023)·4 citations
  3. 03

    Densities and momentum distributions in A <=12 nuclei from chiral effective field theory interactions

    M. Piarulli · S. Pastore · R.B. Wiringa · S. Brusilow · R. Lim

    Current and future electron and neutrino scattering experiments will be greatly aided by a better understanding of the role played by short-range correlations in nuclei. Two-body physics, including nucleon-nucleon correlations and two-body electroweak currents, is required to explain the body of experimental data for both static and dynamical nuclear properties. In this work, we focus on examining nucleon-nucleon correlations from a chiral effective field theory perspective and provide a comprehensive set of new variational Monte Carlo calculations of one- and two-body densities and momentum distributions based on the Norfolk many-body nuclear Hamiltonians for A<=12 systems. Online access to detailed tables and figures is available.

    nucl-thPRC(2023)·30 citations

Affiliations

first authorsco-authorsvia INSPIRE