Nucleus giant resonances from an improved isospin-dependent Boltzmann-Uehling-Uhlenbeck transport approach
arXiv:2007.11194 · doi:10.1103/PhysRevC.102.024306
Abstract
We have studied the isoscalar giant quadruple resonance (ISGQR) and the isovector giant dipole resonance (IVGDR) in Pb based on an improved isospin-dependent Boltzmann-Uehling-Uhlenbeck transport approach using an improved isospin- and momentum-dependent interaction. With the isoscalar nucleon effective mass and the nucleon-nucleon cross section which reproduces respectively the excitation energy and the width of the ISGQR strength function, the slope parameter of the symmetry energy and the neutron-proton effective mass splitting are constrained respectively within MeV and , by comparing the resulting centroid energy of the IVGDR and the electric dipole polarizability with the experimental data. It is found that nucleon-nucleon collisions have considerable effects on the resulting electric dipole polarizability, which needs to be measured more accurately in order to pin down isovector nuclear interactions.
10 pages, 7 figures
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Cited by in corpus (10)
- Dense Nuclear Matter Equation of State from Heavy-Ion Collisions
- Comparison of Heavy-Ion Transport Simulations: Mean-field Dynamics in a Box
- Bayesian uncertainty quantification for nuclear matter incompressibility
- Neutron-proton effective mass splitting in neutron-rich matter
- Constraining isovector nuclear interactions with giant dipole resonance and neutron skin in Pb from a Bayesian approach
- Bayesian inference of finite-nuclei observables based on the KIDS model
- Nuclear giant quadruple resonance within transport approach and its constraint on nucleon effective mass
- Isovector giant dipole resonance mode with an improved propagation approach in the framework of EQMD model
- Constraining neutron-proton effective mass splitting through nuclear giant dipole resonance within transport approach
- Bayesian Analyses of Proton Multiple Flow Components in Intermediate Heavy Ion Collisions with Momentum-Dependent Interactions