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Ground-state mass of $^{22}$Al and test of state-of-the-art \textit{ab initio} calculations

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arxiv 2401.14704 v1 pith:QA2NZNA4 submitted 2024-01-26 nucl-ex

classification nucl-ex
keywords mirrormassdifferencesenergystatescalculationsenergiesexcess
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

The ground-state mass excess of the $T_{z}=-2$ drip-line nucleus $^{22}$Al is measured for the first time to be $18103(10)$ keV using the newly-developed B$\rho$-defined isochronous mass spectrometry method at the cooler storage ring in Lanzhou. The new mass excess value allowed us to determine the excitation energies of the two low-lying $1^+$ states in $^{22}$Al with significantly reduced uncertainties of 51 keV. Comparing to the analogue states in its mirror nucleus $^{22}$F, the mirror energy differences of the two $1^+$ states in the $^{22}$Al-$^{22}$F mirror pair are determined to be $-625(51)$ keV and $-330(51)$ keV, respectively. The excitation energies and the mirror energy differences are used to test the state-of-the-art \textit{ab initio} valence-space in-medium similarity renormalization group calculations with four sets of interactions derived from the chiral effective field theory. The mechanism leading to the large mirror energy differences is investigated and attributed to the occupation of the $\pi s_{1/2}$ orbital.

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  1. Lattice simulation of nucleon distribution and shell closure in the proton-rich nucleus $^{22}$Si

    nucl-th 2024-11 conditional novelty 7.0 of 10

    Lattice chiral EFT simulations predict that 22Si is bound against two-proton emission and that its protons and neutrons fill the Z=14 and N=8 shells.

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