PaperPanorama

Nuclear Theory·nucl-th

Thursday·May 16, 2024

12 papers4 primary·8 cross-listed

  1. 01

    Determination of pairing matrix elements from average single particle level densities

    Meng-Hock Koh🇲🇾 · Philippe Quentin🇫🇷

    A simple and efficient method to treat nuclear pairing correlations within a simple Hartree-Fock--plus-BCS description is proposed and discussed. It relies on the fact that the intensity of pairing correlations depends crucially on level densities around the Fermi surface () and that any fitting of nuclear energies as functions of the nucleon numbers is akin of a semi-classical average, smoothing out their quantal structure. A particular attention has been paid to two points generally ignored in previous similar approaches. One is a correction advocated by Möller and Nix [Nucl. Phys. A 536, 20 (1992)] taking into account the fact that the data included into the fit correspond to values systematically lower than average. The second is due to a systematic overestimation of the proton sp level density at the Fermi surface resulting from the local Slater approximation of the Coulomb terms in use in most microscopic descriptions. Our approach is validated by the agreement with data of corresponding calculated moments of inertia of well and rigidly deformed rare-earth nuclei, evaluated according to the Inglis-Belyaev ansatz with some crude Thouless-Valatin corrections. Indeed, the agreement which is found, is at least of the same quality as what results from a specific fit of the pairing intensities to these particular pieces of data. While this approach is currently limited to the very simple seniority force pairing treatment, it may serve as a starting point to define pairing residual interactions from averaged odd-even mass differences data, using merely average sp level densities associated to calculated canonical basis.

    nucl-thPRC(2024)·3 citations
  2. 02

    Microscopic Investigation of Ground State Properties and Shape Evolution in Osmium Isotopes

    Usuf Rahaman · M.Ikram · Ishfaq A. Rather · Anisul Ain Usmani

    The present study focuses on investigating the shape evolution of neutron-rich even-even Osmium (Os) transitional nuclei within the range of neutron number N = 82 to N = 190. The investigation is conducted using density-dependent meson-nucleon and point-coupling models within the framework of the covariant density functional theory (CDFT). Additionally, the results obtained from the CDFT calculations are compared with those obtained using the relativistic mean-field model with a non-linear meson-nucleon interaction. The potential energy curve for Os isotopes (ranging from Os to Os) is analyzed in order to identify phase shape transitions, such as oblate-spherical-prolate. Furthermore, ground state bulk properties are calculated to gain insights into the structure of Os isotopes. The self-consistent calculations reveal a clear shape transition in the even-even Os isotopes, and overall, good agreement is observed among the different models employed as well as with the available experimental data.

    nucl-thBraz.J.Phys.(2024)·1 citation
  3. 03

    Theoretical analysis of the reactions induced by interaction of Li with nuclei H and He

    Yu. A. Lashko · V. S. Vasilevsky · V. I. Zhaba

    We determine cross sections and astrophysical S-factors of the reactions generated in collisions between Li and H, and Li and He. A microscopic three-cluster model is employed to study the dynamics of reactions occurring in the mirror nuclei Be and B. In a previous study [Phys. Rev. C {\bf 109}, 045803 (2024)], this model was successfully applied to investigate the resonance structure of Be and B, as well as reactions induced by the interaction of deuterons with Li and Be. A fairly good agreement between theoretical results and available experimental data was achieved. To the best of our knowledge, appropriate experimental data for the astrophysical S-factors of the reactions generated by the interaction of Li with H and with He are currently unavailable. Thus, our results can serve as a guideline for future experimental efforts.

    nucl-thPRC(2024)·4 citations
  4. 04

    Systematic investigation of the nuclear multiple deformations in U+U collisions with A Multi-Phase Transport model

    Zaining Wang🇨🇳 · Jinhui Chen🇨🇳 · Hao-jie Xu🇨🇳 · Jie Zhao🇨🇳

    Relativistic heavy ion collisions provide a unique opportunity to study the shape of colliding nuclei, even up to higher-order multiple deformations. In this work, several observables that are sensitive to quadrupole and hexadecapole deformations of Uranium-238 in relativistic U+U collisions have been systematically investigated with A Multi-Phase Transport model. We find that the flow harmonic , the and mean transverse momentum correlation, and the three-particle asymmetry cumulant are sensitive to nuclear quadrupole deformation, while and nonlinear response coefficient are sensitive to nuclear hexadecapole deformation. Our results from transport model studies are in qualitative agreement with previous hydrodynamic studies. The results indicate that the uncertainties of the hexadecapole deformation of Uranium on the quadrupole deformation determination can be reduced by the abundance of correlation observables provided by the relativistic heavy ion collisions.

    nucl-thnucl-exPRC(2024)·17 citations

Affiliations

first authorsco-authorsvia INSPIRE