Observation of excited states in Mg sheds light on nuclear forces and shell evolution
arXiv:1901.01741 · doi:10.1103/PhysRevC.99.021301
Abstract
The exotic Borromean nucleus Mg with = 8, located at the proton drip-line provides a unique testing ground for nuclear forces and the evolution of shell structure in the neutron-deficient region. We report on the first observation of proton unbound resonances together with bound states in Mg from the Mg(,) reaction performed at TRIUMF. Phenomenological shell-model calculations offer a reasonable description. However, our experimental results present a challenge for current first-principles nuclear structure approaches and point to the need for improved chiral forces and {\it ab initio} calculations. Furthermore, the differential cross section of the first excited state is compared with distorted-wave Born approximation calculations to deduce a neutron quadrupole deformation parameter of =0.460.21. This provides the first indication of a possible weakening of the = 8 shell closure at the proton drip-line.
6 pages, 4 figures
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