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Charge radii of exotic neon and magnesium isotopes

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arxiv 2007.06684 v1 pith:B5FJT3OO submitted 2020-07-13 nucl-th

classification nucl-th
keywords chargeradiimagnesiumneonaccurateisotopespotentialsyield
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We compute the charge radii of even-mass neon and magnesium isotopes from neutron number N = 8 to the dripline. Our calculations are based on nucleon-nucleon and three-nucleon potentials from chiral effective field theory that include delta isobars. These potentials yield an accurate saturation point and symmetry energy of nuclear matter. We use the coupled-cluster method and start from an axially symmetric reference state. Binding energies and two-neutron separation energies largely agree with data and the dripline in neon is accurate. The computed charge radii have an estimated uncertainty of about 2-3% and are accurate for many isotopes where data exist. Finer details such as isotope shifts, however, are not accurately reproduced. Chiral potentials correctly yield the subshell closure at N = 14 and also a decrease in charge radii at N = 8 (observed in neon and predicted for magnesium). They yield a continued increase of charge radii as neutrons are added beyond N = 14 yet underestimate the large increase at N = 20 in magnesium.

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Cited by 2 Pith papers

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  1. Improved structure of calcium isotopes from ab initio calculations

    nucl-th 2024-11 conditional novelty 6.0 of 10

    IMSRG(3)-N7 calculations for calcium-44, -48, and -52 show that three-body flow corrections substantially lower the 48Ca 2+ energy, improving the description of the N=28 shell closure, while leaving the 52Ca charge-ra...

  2. Competition of the shell closure and deformations across the doubly magic $^{78}$Ni

    nucl-ex 2024-12 conditional

    A review of recent RIBF experiments and theoretical models concludes that 78Ni is doubly magic in its ground state but shows signs of shape coexistence with deformed states nearby.

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