PaperPanorama

Nuclear Theory·nucl-th

Thursday·April 27, 2023

11 papers4 primary·7 cross-listed

  1. 01

    Neutron-proton effective mass splitting in neutron-rich matter

    Sibo Wang · Hui Tong · Qiang Zhao · Chencan Wang · Peter Ring · Jie Meng

    Nucleon effective masses in neutron-rich matter are studied with the relativistic Brueckner-Hartree-Fock (RBHF) theory in the full Dirac space. The neutron and proton effective masses for symmetric nuclear matter are 0.80 times rest mass, which agrees well with the empirical values. In neutron-rich matter, the effective mass of the neutron is found larger than that of the proton, and the neutron-proton effective mass splittings at the empirical saturation density are predicted as with being the isospin asymmetry parameter. The result is compared to other ab initio calculations and is consistent with the constraints from the nuclear reaction and structure measurements, such as the nucleon-nucleus scattering, the giant resonances of Pb, and the Hugenholtz-Van Hove theorem with systematics of nuclear symmetry energy and its slope. The predictions of the neutron-proton effective mass splitting from the RBHF theory in the full Dirac space might be helpful to constrain the isovector parameters in phenomenological density functionals.

    nucl-thnucl-exPRC(2023)·21 citations
  2. 02

    Generalized time-dependent generator coordinate method for small and large amplitude collective motion

    B. Li · D. Vretenar · T. Nikšić · P. W. Zhao · J. Meng

    An implementation of the generalized time-dependent generator coordinated method (TD-GCM) is developed, that can be applied to the dynamics of small- and large-amplitude collective motion of atomic nuclei. Both the generator states and weight functions of the GCM correlated wave function depend on time. The initial generator states are obtained as solutions of deformation-constrained self-consistent mean-field equations, and are evolved in time by the standard mean-field equations of nuclear density functional theory (TD-DFT). The TD-DFT trajectories are used as a generally non-orthogonal and overcomplete basis in which the TD-GCM wave function is expanded. The weights, expressed in terms of a collective wave function, obey a TD-GCM (integral) equation. In this explorative paper, the generalized TD-GCM is applied to the excitation energies and spreading width of giant resonances, and to the dynamics of induced fission. The necessity of including pairing correlations in the basis of TD-DFT trajectories is demonstrated in the latter example.

    nucl-thPRC(2023)·21 citations
  3. 03

    Local alpha-removal strength in the mean-field approximation

    Takashi Nakatsukasa · Nobuo Hinohara

    The local alpha strength is proposed to quantify the possibility to form an alpha particle at a specific location inside the nucleus. It also provides the strength of ground and excited states in the residual nuclei after the removal of the alpha particle. We use the Hartree-Fock-plus-BCS (HF+BCS) method in the calculation of the local alpha strengths for Sn isotopes. The local alpha strengths are easily calculable and the results are consistent with recent experimental data for Sn isotopes.

    nucl-thPRC(2023)·8 citations
  4. 04

    On Sequential Single-Pion Production in Double-Pionic Fusion

    M. Bashkanov🇬🇧 · H. Clement🇩🇪

    Recently a two-step process has been proposed for the double-pionic fusion to deuterium . Its calculation is solely based on total cross section data for the two sequential single-pion production steps followed by . Though this sequential process was aimed to explain the dibaryon resonance peak in double-pionic fusion, we demonstrate that this is not the case. It rather fits to a possible broad bump at 2.31 GeV in the energy dependence of the reaction, which was recently interpreted as a consequence of dibaryonic excitations in isoscalar single-pion production.

    nucl-thhep-exhep-phnucl-exNPA(2023)·0 citations

Affiliations

first authorsco-authorsvia INSPIRE