Effective proton-neutron interaction near the drip line from unbound states in $^{25,26}$F
M. Vandebrouck, A. Lepailleur, O. Sorlin, T. Aumann, C. Caesar, M., Holl, V. Panin, F. Wamers, S.R. Stroberg, J.D. Holt, F. De Oliveira Santos,, H. Alvarez-Pol, L. Atar, V. Avdeichikov, S. Beceiro-Novo, D. Bemmerer, J., Benlliure, C. A. Bertulani, S.K. Bogner, J.M. Boillos

TL;DR
This study investigates the proton-neutron interaction near the drip line by analyzing unbound states in $^{25}$F and $^{26}$F, revealing how continuum proximity affects nuclear structure and interactions.
Contribution
The paper provides new experimental data on unbound states in $^{25}$F and $^{26}$F, especially identifying the $J^{ ext{pi}}=3^{+}_1$ state in $^{26}$F, advancing understanding of proton-neutron interactions near the drip line.
Findings
First unbound state in $^{25}$F is a $J^{ ext{pi}}=1/2^-$ state.
Resonance in $^{26}$F at 323 keV is the $J^{ ext{pi}}=3^{+}_1$ state.
Continuum effects influence the proton-neutron interaction near the drip line.
Abstract
Background: Odd-odd nuclei, around doubly closed shells, have been extensively used to study proton-neutron interactions. However, the evolution of these interactions as a function of the binding energy, ultimately when nuclei become unbound, is poorly known. The F nucleus, composed of a deeply bound proton and an unbound neutron on top of an O core, is particularly adapted for this purpose. The coupling of this proton and neutron results in a multiplet, whose energies must be determined to study the influence of the proximity of the continuum on the corresponding proton-neutron interaction. The bound states have been determined, and only a clear identification of the is missing.Purpose: We wish to complete the study of the $J^{\pi} = 1^{+}\_1 -…
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