Detailed study of the astrophysical direct capture reaction 6Li(p,Ξ³)7Be^{6}{\rm Li}(p, \gamma)^{7}{\rm Be} in a potential model approach

Abstract

The astrophysical SS factor and reaction rates of the direct capture process 6^{6}Li(p,Ξ³)7\gamma)^{7}Be are estimated within a two-body single-channel potential model approach. Central potentials of the Gaussian-form in the 2P3/2^2P_{3/2} and 2P1/2^2P_{1/2} waves are adjusted to reproduce the binding energies and the empirical values of the asymptotic normalization coefficients (ANC) for the 7^7Be(3/2βˆ’^-) ground and 7^7Be(1/2βˆ’^-) excited bound states, respectively. The parameters of the potential in the most important 2S1/2^2S_{1/2} scattering channel were fitted to reproduce the empirical phase shifts from the literature and the low-energy astrophysical SS factor of the LUNA collaboration. The obtained results for the astrophysical SS factor and the reaction rates are in a very good agreement with available experimental data sets. The numerical estimates reproduce not only the absolute values, but also the energy and temperature dependence of the SS factor and reaction rates of the LUNA collaboration, respectively. The estimated 7Li/H^{7}{\rm Li/H} primordial abundance ratio (4.67Β±0.04)Γ—10βˆ’10(4.67\pm 0.04 )\times 10^{-10} is well consistent with recent BBN result of (4.72Β±0.72)Γ—10βˆ’10(4.72\pm 0.72) \times 10^{-10} after the Planck observation.Comment: 18 pages, 7 figure

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