Feasibility of studying astrophysically important charged-particle emission with the variable energy $\gamma$-ray system at the Extreme Light Infrastructure -- Nuclear Physics facility
H.Y. Lan, W. Luo, Y. Xu, D.L. Balabanski, G.L. Guardo, M. La Cognata,, D. Lattuada, C. Matei, R.G. Pizzone, T. Rauscher, J.L. Zhou

TL;DR
This study assesses the feasibility of measuring astrophysically relevant charged-particle emission reactions induced by gamma rays using the VEGA+ELISSA system at ELI-NP, aiming to improve understanding of stellar nucleosynthesis processes.
Contribution
It demonstrates, through simulations, that the VEGA+ELISSA system can feasibly measure gamma-induced charged-particle reactions relevant to the astrophysical p process, including excited-state contributions.
Findings
Reaction yields are dominated by a few channels within narrow energy ranges.
Simulated energy spectra support the feasibility of experimental measurements.
Charged-particle emission measurements can provide valuable nuclear astrophysics data.
Abstract
In the environment of a hot plasma, as achieved in stellar explosions, capture and photodisintegration reactions proceeding on excited states in the nucleus can considerably contribute to the astrophysical reaction rate. Such reaction rates including the excited-state contribution are obtained from theoretical calculations as the direct experimental determination of these astrophysical rates is currently unfeasible. In the present study, (,p) and (,) reactions in the mass and energy range relevant to the astrophysical process are considered and the feasibility of measuring them with the ELISSA detector system at the future Variable Energy -ray (VEGA) facility at ELI-NP is investigated. The simulation results reveal that, for the (,p) reaction on twelve targets of Si, Fe, Se, Sr, Zr, Ru, Pd,…
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