1. Re-examining the transition into the N=20 island of inversion: structure of $^{30}$Mg
- Author
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Fernández-Domínguez, B., Pietras, B., Catford, W. N., Orr, N. A., Petri, M., Chartier, M., Paschalis, S., Patterson, N., Thomas, J . S., Caamaño, M., Otsuka, T., Poves, A., Tsunoda, N., Achouri, N. L., Angélique, J-C., Ashwood, N. I., Banu, A ., Bastin, B., Borcea, R., Brown, J., Delaunay, F., Franchoo, S., Freer, M., Gaudefroy, L., Heil, S., Labiche, M., Laurent, B., Lemmon, R. C., Macchiavelli, A. O., Negoita, F., Paul, E. S., Rodríguez-Tajes, C., Roussel-Chomaz, P., Staniou, M., Taylor, M. J., Trache, L., and Wilson, G. L.
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Nuclear Experiment ,Nuclear Theory - Abstract
Intermediate energy single-neutron removal from $^{31}$Mg has been employed to investigate the transition into the N=20 island of inversion. Levels up to 5~MeV excitation energy in $^{30}$Mg were populated and spin-parity assignments were inferred from the corresponding longitudinal momentum distributions and $\gamma$-ray decay scheme. Comparison with eikonal-model calculations also permitted spectroscopic factors to be deduced. Surprisingly, the 0$^{+}_{2}$ level in $^{30}$Mg was found to have a strength much weaker than expected in the conventional picture of a predominantly $2p - 2h$ intruder configuration having a large overlap with the deformed $^{31}$Mg ground state. In addition, negative parity levels were identified for the first time in $^{30}$Mg, one of which is located at low excitation energy. The results are discussed in the light of shell-model calculations employing two newly developed approaches with markedly different descriptions of the structure of $^{30}$Mg. It is concluded that the cross-shell effects in the region of the island of inversion at Z=12 are considerably more complex than previously thought and that $np - nh$ configurations play a major role in the structure of $^{30}$Mg., Comment: Physics Letters B, Volume 779, 10 April 2018, Pages 124-129
- Published
- 2018
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