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arXiv:2405.14305·v1·Nuclear Experiment

High-precision spectroscopy of O benchmarking ab-initio calculations in light nuclei

I. Zanon🇮🇹 · E. Clément🇫🇷 · A. Goasduff🇮🇹 · J. Menéndez🇪🇸 · T. Miyagi🇩🇪 · M. Assié🇫🇷 · M. Ciemała🇵🇱 · F. Flavigny🇫🇷 · A. Lemasson🇫🇷 · A. Matta🇫🇷 · D. Ramos🇫🇷 · M. Rejmund🇫🇷

Abstract

The excited states of unstable O were investigated via -ray spectroscopy following the OO reaction at 8 MeV. By exploiting the Doppler Shift Attenuation Method, the lifetime of the 2 and 3 states were firmly established. From the -ray branching and E2/M1 mixing ratios for transitions deexciting the 2 and 3 states, the B(E2) and B(M1) were determined. Various chiral effective field theory Hamiltonians, describing the nuclear properties beyond ground states, along with a standard USDB interaction, were compared with the experimentally obtained data. Such a comparison for a large set of -ray transition probabilities with the valence space in medium similarity renormalization group ab-initio calculations was performed for the first time in a nucleus far from stability. It was shown that the ab-initio approaches using chiral EFT forces are challenged by detailed high-precision spectroscopic properties of nuclei. The reduced transition probabilities were found to be a very constraining test of the performance of the ab-initio models.

Comments: Supplemental Material available

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