Non-perturbative collective inertias for fission: a comparative study
arXiv:1808.01712 · doi:10.1016/j.physletb.2018.10.045
Abstract
The non-perturbative method to compute Adiabatic Time Dependent Hartree Fock Bogoliubov (ATDHFB) collective inertias is extended to the Generator Coordinate Method (GCM) including the case of density dependent forces. The two inertias schemes are computed along the fission path of the U and compared with the perturbative results. We find that the non-perturbative schemes predict very similar collective inertias with a much richer structure than the one predicted by perturbative calculations. Moreover, the non-perturbative inertias show an extraordinary similitude with the exact GCM inertias computed numerically from the energy overlap. These results indicate that the non-perturbative inertias provide the right structure as a function of the collective variable and only a phenomenological factor is required to mock up the exact GCM inertia, bringing new soundness to the microscopic description of fission.
8 pages, 2 figures
References in corpus (2)
Cited by in corpus (17)
- Future of Nuclear Fission Theory
- Theory of Nuclear Fission
- Cluster radioactivity of Og
- Nucleosynthesis and observation of the heaviest elements
- Covariant density functional theory input for r-process simulations in actinides and superheavy nuclei: the ground state and fission properties
- Finite-amplitude method for collective inertia in spontaneous fission
- Efficient method for estimation of fission fragment yields of r-process nuclei
- Role of dynamic pairing correlations in fission dynamics
- Time-dependent generator coordinate method study of fission: mass parameters
- Description of the asymmetric to symmetric fission transition in the neutron-deficient Thoriums -- Role of the tensor force
- Neural Network Emulation of Spontaneous Fission
- Cluster properties of heavy nuclei predicted with the Barcelona-Catania-Paris-Madrid energy density functional
- Multimodal fission from self-consistent calculations
- Moments of inertia of rare-earth nuclei and the nuclear time-odd mean fields within exact solutions of the adiabatic theory
- Quadrupole Strength in Isobaric Triplets
- Microscopic Theory of Nuclear Fission
- Microscopic pairing in fission dynamics