Investigation of the formation of superheavy elements with atomic numbers 116 and 120 through Ti-induced reaction
arXiv:2504.19650 · doi:10.1103/PhysRevC.111.054619
Abstract
The synthesis of superheavy elements provides crucial insights into the stability and structure of nuclei at the limits of the periodic table. This study investigates the TiPu and TiCf reactions as pathways to form superheavy elements (SHEs) 116 (Livermorium) and 120, respectively. Using the dinuclear system model, key parameters such as fusion probability and fusion cross section were calculated. These findings were used to examine neutron emission and survival probability through a statistical approach. The reaction TiPu is explored as a continuation of experimental efforts to extend the known isotopic range of element 116, while the TiCf reaction represents a frontier for the synthesis of element 120. The role of shell effects, excitation energy, and angular momentum on the production and stability of these nuclei is discussed. The results provide theoretical predictions to guide future experimental efforts aimed at advancing our understanding of the island of stability and the limits of nuclear existence.
11 pages, 12 figures, accepted by PRC
References in corpus (7)
- Theoretical study of the synthesis of superheavy nuclei with Z= 119 and 120 in heavy-ion reactions with trans-uranium targets
- Investigation on the 48Ca+249-252Cf reactions synthesizing isotopes of the superheavy element 118
- Analysis of the fusion mechanism in synthesis superheavy element 119 via Cr+Am reaction
- Optimal colliding energy for the synthesis of superheavy element =119
- Uncertainties and understanding of experimental and theoretical results regarding reactions forming heavy and superheavy nuclei
- A new dynamical mechanism of incomplete fusion in heavy-ion collision
- Small cross section of the synthesis of darmstadtium in the Ca+Th reaction