English

M1 dipole strength from projected generator coordinate method calculations in the sd-shell valence space

Nuclear Theory 2025-12-09 v1 Nuclear Experiment

Abstract

The low-energy enhancement observed in the deexcitation γ\gamma-ray strength functions, attributed to magnetic dipole (M1) radiations, has spurred theoretical efforts to improve on its description. Among the most widely used approaches are the quasiparticle random-phase approximation (QRPA) and its extensions. However, these methods often struggle to reproduce the correct behavior of the M1 strength at the lowest γ\gamma energies. An alternative framework, the projected generator coordinate method (PGCM), offers significant advantages over QRPA by restoring broken symmetries and incorporating both vibrational and rotational dynamics within a unified description. Due to these features, PGCM has been proposed as a promising tool to study the low-energy M1 strength function in atomic nuclei. However, comprehensive investigations employing this method are lacking. The PGCM is presently used within the frame of sd-shell valence space calculations based on the USDB shell-model interaction to benchmark its performance against the solutions obtained via exact diagonalization. The reliability of two different sets of generator coordinates in the PGCM calculations is gauged using 24{}^{24}Mg as a test case. The ability of the PGCM to reproduce results from exact diagonalization in the sd valence space is demonstrated for 1+1^{+} states and M1 transitions. Future work will need to assess whether the proposed method can be applied systematically and extended to large-scale calculations while maintaining a reasonable computational cost.

Keywords

Cite

@article{arxiv.2507.12037,
  title  = {M1 dipole strength from projected generator coordinate method calculations in the sd-shell valence space},
  author = {Stavros Bofos and Jaime Martínez-Larraz and Benjamin Bally and Thomas Duguet and Mikael Frosini and Tomás R. Rodríguez and Kamila Sieja},
  journal= {arXiv preprint arXiv:2507.12037},
  year   = {2025}
}

Comments

12 pages, 9 figures

R2 v1 2026-07-01T04:03:50.060Z