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arXiv:2609.04758·v1·Nuclear Theory

Rotational Feshbach resonances in the deformed halo nucleus Ne

Shin Watanabe · Shoya Ogawa · Takuma Matsumoto · Kazuyuki Ogata

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Abstract

Background: The deformed halo nucleus Ne exhibits unique structural properties arising from the interplay between its halo neutron and the deformation of the Ne core. While previous studies have established the nature of its weakly-bound ground state through reaction cross sections and inclusive breakup measurements, the structure of its excited states in the low-energy continuum, which are expected to appear as resonances, remains largely unexplored. Purpose: We investigate the structure of these resonant states and clarify their rotational nature and formation mechanism. Method: The structure of Ne is described using the particle rotor model (PRM), which explicitly treats the coupling between core excitation and single-particle motion in both bound and continuum states. Results: The calculations predict the emergence of unbound rotational states in the low-energy continuum of Ne, which form a rotational sequence built on the weakly-bound Nilsson [321 3/2] configuration. As the total angular momentum increases along the rotational band, the intrinsic Nilsson structure is largely preserved, whereas the dominant core-spin component shifts to higher spins. These resonances are stabilized through the combined effects of coupling to higher-lying closed core-excited channels and reduced effective neutron relative energies, and can therefore be interpreted as rotational Feshbach resonances. Conclusion: The present study elucidates the formation mechanism of rotational Feshbach resonances in Ne. This mechanism is expected to be a general feature of weakly-bound deformed nuclei. Exclusive breakup measurements with coincident detection of rays from the de-exciting core will provide crucial tests of the proposed formation mechanism of rotational Feshbach resonances.

Comments: 10 pages, 7 figures