arXiv:1103.3849·v1·Nuclear Experiment
Inverse-kinematics one-neutron pickup with fast rare-isotope beams
A. Gade🇺🇸 · J.A. Tostevin🇮🇱 · T. Baugher🇺🇸 · D. Bazin🇺🇸 · B.A. Brown🇺🇸 · C. M. Campbell🇺🇸 · T. Glasmacher🇺🇸 · G.F. Grinyer🇺🇸 · S. McDaniel🇺🇸 · K. Meierbachtol🇺🇸 · A. Ratkiewicz🇺🇸 · S.R. Stroberg🇺🇸
Abstract
New measurements and reaction model calculations are reported for single neutron pickup reactions onto a fast \nuc{22}{Mg} secondary beam at 84 MeV per nucleon. Measurements were made on both carbon and beryllium targets, having very different structures, allowing a first investigation of the likely nature of the pickup reaction mechanism. The measurements involve thick reaction targets and -ray spectroscopy of the projectile-like reaction residue for final-state resolution, that permit experiments with low incident beam rates compared to traditional low-energy transfer reactions. From measured longitudinal momentum distributions we show that the reaction largely proceeds as a direct two-body reaction, the neutron transfer producing bound \nuc{11}{C} target residues. The corresponding reaction on the \nuc{9}{Be} target seems to largely leave the \nuc{8}{Be} residual nucleus unbound at excitation energies high in the continuum. We discuss the possible use of such fast-beam one-neutron pickup reactions to track single-particle strength in exotic nuclei, and also their expected sensitivity to neutron high- (intruder) states which are often direct indicators of shell evolution and the disappearance of magic numbers in the exotic regime.
Comments: 8 pages, 5 figures