Quantified Gamow Shell Model interaction for $psd$-shell nuclei
Y. Jaganathen, R. M. Id Betan, N. Michel, W. Nazarewicz, M., Ploszajczak

TL;DR
This paper develops and optimizes a complex-energy Gamow Shell Model interaction for $psd$-shell nuclei, enabling accurate, uncertainty-quantified predictions of nuclear structure and reactions near particle drip lines.
Contribution
It introduces a new optimized GSM interaction for $psd$-shell nuclei, incorporating full uncertainty quantification for structure and reaction predictions.
Findings
Good agreement with experimental binding energies.
Successful reproduction of nucleon scattering phase shifts.
Predictions of excitation spectra with quantified uncertainties.
Abstract
The structure of weakly bound and unbound nuclei close to particle drip lines is one of the major science drivers of nuclear physics. A comprehensive understanding of these systems goes beyond the traditional configuration interactions approach formulated in the Hilbert space of localized states (nuclear shell model) and requires an open quantum system description. The complex-energy Gamow Shell Model (GSM) provides such a framework as it is capable of describing resonant and non-resonant many-body states on equal footing. To make reliable predictions, quality input is needed that allows for the full uncertainty quantification of theoretical results. In this study, we carry out the optimization of an effective GSM (one-body and two-body) interaction in the shell model space. The resulting interaction is expected to describe nuclei with at the…
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