Constraining isovector nuclear interactions with giant dipole resonance and neutron skin in Pb from a Bayesian approach
arXiv:2104.12985 · doi:10.1088/0256-307X/38/4/042101
Abstract
The remaining uncertainties of isovector nuclear interactions call for reliable experimental measurements of isovector probes in finite nuclei. Based on the Bayesian analysis, although the neutron-skin thickness data or the isovector giant dipole resonance data in Pb can constrain only one isovector interaction parameter, correlations between other parameters are built. Using combined data of both the neutron-skin thickness and the isovector giant dipole resonance helps to constrain significantly all isovector interaction parameters, thus serves as a useful way in the future analysis.
5 pages, 4 figures
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- Bayesian uncertainty quantification for nuclear matter incompressibility
- Bayesian inference of finite-nuclei observables based on the KIDS model
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- Effects of neutron-skin thickness on direct hard photon emission from reactions induced by the neutron-rich projectile Ca
- Impact of ground-state properties and collective excitations on the Skyrme ansatz: a Bayesian study
- Temperature and density effects on the two-nucleon momentum correlation function from excited single nuclei