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arXiv · 1504.02329

Neutron single-particle strength in silicon isotopes: Constraining the driving forces of shell evolution

Abstract

Shell evolution is studied in the neutron-rich silicon isotopes 36,38,40 Si using neutron single-particle strengths deduced from one-neutron knockout reactions. Configurations involving neutron excita- tions across the N = 20 and N = 28 shell gaps are quantified experimentally in these rare isotopes. Comparisons with shell model calculations show that the tensor force, understood to drive the col- lective behavior in 42 Si with N = 28, is already important in determining the structure of 40 Si with N = 26. New data relating to cross-shell excitations provide the first quantitative support for repulsive contributions to the cross-shell T = 1 interaction arising from three-nucleon forces.

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S. R. Stroberg, A. Gade, J. A. Tostevin, V. M. Bader, T. Baugher, D. Bazin, J. S. Berryman, B. A. Brown, C. M. Campbell, K. W. Kemper, C. Langer, E. Lunderberg, A. Lemasson, S. Noji, T. Otsuka, F. Recchia, C. Walz, D. Weisshaar, S. Williams. 2015-04-09. Neutron single-particle strength in silicon isotopes: Constraining the driving forces of shell evolution. https://doi.org/10.1103/physrevc.91.041302

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