Radiative capture reaction for $^{17}$Ne formation within a full three-body model
J. Casal, E. Garrido, R. de Diego, J. M. Arias, M., Rodr\'iguez-Gallardo

TL;DR
This study calculates the radiative capture reaction rate for $^{17}$Ne formation using a comprehensive three-body model, revealing significantly higher rates than previous estimates, with implications for astrophysical rp-process modeling.
Contribution
The paper introduces a full three-body model with two discretization methods to accurately compute $^{17}$Ne formation rates, including all relevant reaction mechanisms.
Findings
Reaction rate is several orders of magnitude larger than previous estimates.
Good agreement between the two computational methods across temperature ranges.
Implications for rp-process in type I x-ray bursts need further exploration.
Abstract
Background: The breakout from the hot Carbon-Nitrogen-Oxigen (CNO) cycles can trigger the rp-process in type I x-ray bursts. In this environment, a competition between and the two-proton capture reaction is expected. Purpose: Determine the three-body radiative capture reaction rate for formation including sequential and direct, resonant and non-resonant contributions on an equal footing. Method: Two different discretization methods have been applied to generate Ne states in a full three-body model: the analytical transformed harmonic oscillator method and the hyperspherical adiabatic expansion method. The binary --O interaction has been adjusted to reproduce the known spectrum of the unbound F nucleus. The dominant contributions to the…
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