Ab initio description of monopole resonances in light- and medium-mass nuclei: I. Technical aspects and uncertainties of ab initio PGCM calculations
Andrea Porro, Thomas Duguet, Jean-Paul Ebran, Mikael Frosini, Robert, Roth, Vittorio Som\'a

TL;DR
This paper introduces the use of the projected generator coordinate method (PGCM) for ab initio calculations of giant monopole resonances in nuclei, emphasizing technical details and uncertainty quantification, and demonstrating its advantages over traditional methods.
Contribution
It presents the first detailed technical and uncertainty analysis of ab initio PGCM calculations for giant monopole resonances in nuclei, expanding the theoretical toolkit beyond QRPA methods.
Findings
PGCM can handle anharmonic effects and symmetries in nuclear excitations.
Demonstrated PGCM's applicability to light- and medium-mass nuclei, including pairing and deformation.
Provided uncertainty quantification for ab initio GMR calculations.
Abstract
Giant resonances (GRs) are a striking manifestation of collective motions in mesoscopic systems such as atomic nuclei. Until recently, theoretical investigations have essentially relied on the (quasiparticle) random phase approximation ((Q)RPA), and extensions of it, based on phenomenological energy density functionals (EDFs). As part of a current effort to describe GRs within an ab initio theoretical scheme, the present work promotes the use of the projected generator coordinate method (PGCM). This method, which can handle anharmonic effects while satisfying symmetries of the nuclear Hamiltonian, displays a favorable (i.e. mean-field-like) scaling with system's size. Presently focusing on the isoscalar giant monopole resonance (GMR) of light- and medium-mass nuclei, PGCM's potential to deliver wide-range ab initio studies of GRs in closed- and open-shell nuclei encompassing pairing,…
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Taxonomy
TopicsNuclear physics research studies · Advanced NMR Techniques and Applications · Advanced Chemical Physics Studies
