arXiv:2311.16837·v3·Nuclear Theory
Fusion and reactions of +Be in the Hoyle resonance and associated resonances region
Teck-Ghee Lee · Orhan Bayrak · Cheuk-Yin Wong
Abstract
The fusion of and Be to produce a C nucleus is a crucial process in nucleosynthesis. In the laboratory, this process can only be studied theoretically as a Be target or projectile cannot be prepared experimentally. We use the potential scattering theory in the coupled-channel formalism to study such a process in terms of the collision between the particle on a deformed Be nucleus, both on resonance and off resonance in the Hoyle resonance and associated resonances region. The experimental C energy levels and widths constrain the nuclear potential to suggest the need to include a parity-dependent surface potential component that is more attractive for even- positive-parity partial waves than for odd- negative-parity partial waves. As a consequence, the radial dependence of the total potentials for the set of \{0, 2, 4\} resonances of C exhibit a double-hump behavior, possessing two local energy minima and a doublet of each of the C \{0, 2, 4\} resonances in the Hoyle and associated resonances region. We examine the approximate agreement of the theoretical results with experiment and suggest the search for the as-yet unobserved lower-energy 2 and 4 resonances to test the double-hump potential description. In addition, for practical astrophysical applications, we evaluate and estimate the astrophysical -factor for the +Be C C + reaction for 1.0 MeV.
Comments: 21 pages, 13 figures