Finite-temperature linear response theory based on relativistic Hartree Bogoliubov model with point-coupling interaction
A. Ravli\'c, Y.F. Niu, T. Nik\v{s}i\'c, N. Paar, P. Ring

TL;DR
This paper develops a finite-temperature relativistic linear response theory based on the Hartree-Bogoliubov model with point-coupling interactions, enabling efficient study of temperature effects on spin-isospin excitations without large matrix diagonalizations.
Contribution
It introduces a novel finite-temperature linear response framework using relativistic Hartree-Bogoliubov theory with point-coupling interactions, avoiding large matrix diagonalizations at finite temperature.
Findings
Temperature evolution of IAR, GTR, and SDR in tin isotopes studied.
Model effectively incorporates temperature effects via grand-canonical ensemble.
Relativistic point-coupling and separable pairing reduce computational complexity.
Abstract
The finite-temperature linear response theory based on the finite-temperature relativistic Hartree-Bogoliubov (FT-RHB) model is developed in the charge-exchange channel to study the temperature evolution of spin-isospin excitations. Calculations are performed self-consistently with relativistic point-coupling interactions DD-PC1 and DD-PCX. In the charge-exchange channel, the pairing interaction can be split into isovector () and isoscalar () parts. For the isovector component, the same separable form of the Gogny D1S pairing interaction is used both for the ground-state calculation as well as for the residual interaction, while the strength of the isoscalar pairing in the residual interaction is determined by comparison with experimental data on Gamow-Teller resonance (GTR) and Isobaric analog resonance (IAR) centroid energy differences in even-even tin isotopes. The…
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