A new inverse quasifission mechanism to produce neutron-rich transfermium nuclei
arXiv:1003.1791 · doi:10.1103/PhysRevC.81.044613
Abstract
Based on time-dependent Hartree-Fock theory, a new inverse quasifission mechanism is proposed to produce neutron-rich transfermium nuclei, in collision of prolate deformed actinides. Calculations show that collision of the tip of one nucleus with the side of the other results in a nucleon flux toward the latter. The role of nucleon evaporation and impact parameter, as well as the collision time are discussed.
8 pages, 7 figures
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Cited by in corpus (14)
- Particle transfer reactions with the time-dependent Hartree-Fock theory using a particle number projection technique
- Interplay between quantum shells and orientation in quasi-fission
- TDHF Theory and Its Extensions for the Multinucleon Transfer Reaction: a Mini Review
- Particle number fluctuations and correlations in transfer reactions obtained using the Balian-Vénéroni variational principle
- Dissipative dynamics in quasi-fission
- Enhanced nucleon transfer in tip collisions of U+Sn
- Progress of Quantum Molecular Dynamics model and its applications in Heavy Ion Collisions
- Multi-Nucleon Transfer in Central Collisions of U + U
- Dynamical effects in fusion with exotic nuclei
- Time-dependent Hartree-Fock study of quasifission trajectories in reactions forming Og
- Impact of tensor force on quantum shell effects in quasifission reactions
- Challenges in description of heavy-ion collisions with microscopic time-dependent approaches
- Microscopic study of the effect of intrinsic degrees of freedom on fusion
- Time-dependent mean-field investigations of the quasifission process