arXiv:1201.2403·v2·Nuclear Experiment
Intermediate-energy inverse-kinematics one-proton pickup reactions on neutron-deficient -shell nuclei
S. McDaniel🇺🇸 · A. Gade🇺🇸 · J. A. Tostevin🇮🇱 · T. Baugher🇺🇸 · D. Bazin🇺🇸 · B. A. Brown🇺🇸 · J. M. Cook🇺🇸 · T. Glasmacher🇺🇸 · G. F. Grinyer🇺🇸 · A. Ratkiewicz🇺🇸 · D. Weisshaar🇺🇸
Abstract
Background: Thick-target-induced nucleon-adding transfer reactions onto energetic rare-isotope beams are an emerging spectroscopic tool. Their sensitivity to single-particle structure complements one-nucleon removal reaction capabilities in the quest to reveal the evolution of nuclear shell structure in very exotic nuclei. Purpose: To add intermediate-energy, carbon-target-induced one-proton pickup reactions to the arsenal of -ray tagged direct reactions applicable in the regime of low beam intensities and to apply these for the first time to -shell nuclei. Methods: Inclusive and partial cross sections were measured for the X and X proton pickup reactions at 56.7 and 61.2 MeV/nucleon, respectively, using coincident particle- spectroscopy at the NSCL. The results are compared to reaction theory calculations using -shell-model nuclear structure input. For comparison with our previous work, the same reactions were measured on \nuc{9}{Be} targets. Results: The measured partial cross sections confirm the specific population pattern predicted by theory, with pickup into high- orbitals being strongly favored; driven by linear and angular momentum matching. Conclusion: Carbon target-induced pickup reactions are well-suited, in the regime of modest beam intensity, to study the evolution of nuclear structure, with specific sensitivities that are well described by theory.
Comments: 9 pages, 5 figures, Physical Review C, Final accepted version