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arXiv:2609.06638·v1·Nuclear Theory

Reentrance of proton-neutron pairing in hot nuclear systems

T. Vu Dong · Alan A. Dzhioev · A. I. Vdovin · N. Quang Hung

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Abstract

We develop a generalized finite-temperature proton-neutron BCS framework using the superoperator formalism, incorporating both isovector and isoscalar monopole pairing channels. Numerical calculations for a schematic equidistant multilevel model and realistic even-even Ge isotopes demonstrate the emergence of proton-neutron () pairing reentrance in even-even asymmetric () nuclei with preexisting like-nucleon pairing correlations. This nonmonotonic behavior arises from thermal excitations that partially lift Pauli blocking of single-particle orbitals near the chemical potentials, thereby enlarging the phase space for pair formation. We uncover a delicate interplay between thermal unblocking and like-nucleon pairing, which can either suppress or enhance correlations depending on temperature and shell filling. A qualitative analysis of Fermi charge-exchange strength functions in hot Ge, which neglects the residual interaction between thermal quasiparticles, suggests that pairing reentrance may alter the transition strength distribution around ~MeV. This indicates that finite-temperature correlations could potentially impact stellar weak-interaction rates in -process and supernova environments.

Comments: 15 pages, 10 figures