Uncertainties in the $^{18}$F(p,$\alpha$)$^{15}$O reaction rate in classical novae
D. Kahl, J. Jos\'e, P.J. Woods

TL;DR
This study assesses how uncertainties in the $^{18}$F(p,$eta$)$^{15}$O reaction rate affect predictions of $^{18}$F ejected in classical novae, highlighting the need for targeted experimental measurements of nuclear states.
Contribution
It provides a comprehensive theoretical analysis of the impact of reaction rate uncertainties on nova $^{18}$F predictions, guiding future experimental efforts.
Findings
Reaction rate uncertainty causes ~10-fold variation in $^{18}$F predictions.
$^{18}$F abundance may be correlated with $^{19}$F.
Uncertainty mainly due to unknown interference signs between resonances.
Abstract
Context. Direct observation of gamma-ray emission from the decay of F ejected in classical nova outbursts remains a major focus of the nuclear astrophysics community. However, modeling the abundance of ejected F, and thus the predicted detectability distance of a gamma-ray signal near 511 keV emitted from these transient thermonuclear episodes, is hampered by significant uncertainties in our knowledge of the key F(p,) reaction rate. Aims. We analyze uncertainties in the most recent nuclear physics experimental results employed to calculate the F(p,) reaction rate. Our goal is to determine which uncertainties have the most profound influence on the predicted abundance of F ejected from novae, in order to guide future experimental works. Methods. We calculated a wide range of F(p,) reaction rates using R-Matrix formalism,…
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