English

Deformed shell effects in $^{48}$Ca+$^{249}$Bk quasifission fragments

Nuclear Theory 2019-09-04 v1 Nuclear Experiment

Abstract

Background: Quasifission is the main reaction channel hindering the formation of superheavy nuclei (SHN). Its understanding will help to optimize entrance channels for SHN studies. Quasifission also provides a probe to understand the influence of shell effects in the formation of the fragments. Purpose: Investigate the role of shell effects in quasifission and their interplay with the orientation of the deformed target in the entrance channel. Methods: 48^{48}Ca+249+^{249}Bk collisions are studied with the time-dependent Hartree-Fock approach for a range of angular momenta and orientations. Results: Unlike similar reactions with a 238^{238}U target, no significant shell effects which could be attributed to 208^{208}Pb "doubly-magic" nucleus are found. However, the octupole deformed shell gap at N=56N=56 seems to strongly influence quasifission in the most central collisions. Conclusions: Shell effects similar to those observed in fission affect the formation of quasifission fragments. Mass-angle correlations could be used to experimentally isolate the fragments influenced by N=56N=56 octupole shell gaps.

Cite

@article{arxiv.1906.07623,
  title  = {Deformed shell effects in $^{48}$Ca+$^{249}$Bk quasifission fragments},
  author = {K. Godbey and A. S. Umar and C. Simenel},
  journal= {arXiv preprint arXiv:1906.07623},
  year   = {2019}
}

Comments

12 pages, 9 figures

R2 v1 2026-06-23T09:57:01.405Z