Third minima in thorium and uranium isotopes in a self-consistent theory
arXiv:1302.1165 · doi:10.1103/PhysRevC.87.054327
Abstract
Background: Deep third minima have been predicted in some non-self-consistent models to impact fission pathways of thorium and uranium isotopes. These predictions have guided the interpretation of resonances seen experimentally. On the other hand, self-consistent calculations consistently predict very shallow potential-energy surfaces in the third minimum region. Purpose: We investigate the interpretation of third-minimum configurations in terms of dimolecular states. We study the isentropic potential-energy surfaces of selected even-even thorium and uranium isotopes at several excitation energies. In order to understand the driving effects behind the presence of third minima, we study the interplay between pairing and shell effects. Methods: We use the finite-temperature superfluid nuclear density functional theory. We consider a traditional functional, SkM*, and a recent functional, UNEDF1, optimized for fission studies. Results: We predict very shallow or no third minima in the potential-energy surfaces of 232Th and 232U. In Th and U isotopes with N=136 and 138, the third minima are deeper. We show that the reflection-asymmetric configurations around the third minimum can be associated with dimolecular states involving the spherical doubly magic 132Sn and a lighter deformed Zr or Mo fragment. The potential-energy surfaces for 228,232Th and 232U at several excitation energies are presented. Conclusions: We show that the neutron shell effect that governs the existence of the dimolecular states around the third minimum is consistent with the spherical-to-deformed shape transition in the Zr and Mo isotopes around N=58. We demonstrate that the thermal reduction of pairing and enhancement of shell effects at small excitation energies help to develop deeper third minima. At large excitation energies, shell effects are washed out and third minima disappear altogether.
9 pages, 10 figures; published in Physical Review C
References in corpus (10)
- Spontaneous fission modes and lifetimes of super-heavy elements in the nuclear density functional theory
- Fission Barriers of Compound Superheavy Nuclei
- Microscopic description of complex nuclear decay: multimodal fission
- Structure properties of Th and Fm fission fragments: mean field analysis with the Gogny force
- Surface Symmetry Energy of Nuclear Energy Density Functionals
- Solution of the Skyrme-Hartree-Fock-Bogolyubov equations in the Cartesian deformed harmonic-oscillator basis. (VI) HFODD (v2.38j): a new version of the program
- Fission modes of mercury isotopes
- Systematic Study of Fission Barriers of Excited Superheavy Nuclei
- Exploring the multi-humped fission barrier of 238U via sub-barrier photofission
- Density Functional Theory Approach to Nuclear Fission
Cited by in corpus (34)
- Microscopic Theory of Nuclear Fission: A Review
- Nuclear energy density optimization: Shell structure
- Formation and dynamics of fission fragments
- Multidimensionally-constrained covariant density functional theories --- nuclear shapes and potential energy surfaces
- Fission dynamics within time-dependent Hartree-Fock: deformation-induced fission
- Effect of shell structure on the fission of sub-lead nuclei
- Microscopic modeling of mass and charge distributions in the spontaneous fission of 240Pu
- Microscopic description of fission in Uranium isotopes with the Gogny energy density functional
- Excitation energy dependence of fission in the mercury region
- Microscopic self-consistent description of induced fission dynamics: finite temperature effects
- Multidimensionally-constrained relativistic mean-field study of triple-humped barriers in actinides
- Nucleon localization and fragment formation in nuclear fission
- Fission dynamics within time-dependent Hartree-Fock: boost-induced fission
- Time-dependent generator coordinate method study of mass-asymmetric fission of actinides
- Microscopic description of fission in superheavy nuclei with the parametrization D1M of the Gogny energy density functional
- Microscopic description of fission in neutron-rich plutonium isotopes with the Gogny-D1M energy density functional
- First applications of Fayans functional to deformed nuclei
- Uncertainty Quantification and Propagation in Nuclear Density Functional Theory
- Microscopic description of fission in odd-mass uranium and plutonium nuclei with the Gogny energy density functional
- Microscopic description of fission in nobelium isotopes with the Gogny-D1M energy density functional
- Least action description of spontaneous fission in fermium and nobelium nuclei based on the Gogny energy density functional
- Fission dynamics, dissipation and clustering at finite temperature
- Near-barrier Photofission in Th and U
- Fission barriers of two odd-neutron actinide nuclei taking into account the time-reversal symmetry breaking at the mean-field level
- Microscopic description of fission in neutron-rich Radium isotopes with the Gogny energy density functional
- Nascent fragment shell effects on the nuclear fission processes in semiclassical periodic orbit theory
- Semiclassical trace formula for truncated spherical well potentials: Toward the analyses of shell structures in nuclear fission processes
- Least action description of dynamic pairing correlations in the fission of Curium and Californium isotopes based on the Gogny energy density functional
- Superfluid fission dynamics with microscopic approaches
- Time-dependent density functional theory study of induced-fission dynamics of Th
- Ground state and fission properties of even- uranium isotopes from multidimensionally-constrained relativistic mean field model
- Shell effects in quasi-fission for calcium induced reactions forming thorium isotopes
- Microscopic description of spontaneous fission based on a Gogny energy density functional including tensor contributions
- Isoenergetic description of induced fission pathways within energy-density functional theory