Investigation of Direct Nuclear Reactions in a Storage Ring Using In-Ring Detection
Abstract
\textbf{Background:} Experiments involving nuclear reactions in a storage ring offer exceptional possibilities for precise measurements in inverse kinematics. These experiments provide excellent angular and energy resolution by particle spectroscopy, in addition to high luminosities. However, the extremely low-pressure environment maintained in the storage rings poses significant difficulties for experiments employing detectors or any outgassing material in the ring. \textbf{Purpose:} To investigate nuclear reactions in inverse kinematics using the storage-ring technique. The reactions were induced by scattering of a beam off a hydrogen target at an energy of 50~MeV/u. \textbf{Method:} A beam of fully stripped Ne ions was injected into the ESR storage ring at an energy of 50 MeV/u. The beam interacted with an internal hydrogen gas-jet target. An ultra-high vacuum compatible detector setup was installed around the gas jet inside the ring to measure the recoiling particles generated by nuclear reactions. \textbf{Results:} Multiple reaction channels were observed during the experiment. In particular, we present the results from studies on elastic and inelastic scattering, as well as the neutron transfer reaction . The experimental data were compared to calculations that took into account the most significant excited states, using a coupled-reaction channel approach. A very good agreement with the experimental data was achieved. \textbf{Conclusions:} The present results are the first demonstration of the investigation transfer reactions using detectors directly installed in the ring. This provides an important proof-of-principle for prospective studies with far-from-stability radioactive beams in the future.
Cite
@article{arxiv.2503.05081,
title = {Investigation of Direct Nuclear Reactions in a Storage Ring Using In-Ring Detection},
author = {J. C. Zamora and T. Aumann and S. Bagchi and S. Bishop and M. Bo and S. Bonig and C. Brandau and M. Csatlos and T. Davinson and I. Dillmann and C. Dimopoulou and D. T. Doherty and P. Egelhof and V. Eremin and A. Estrade and A. Evdokimovc and J. L. Ferreira and T. Furuno and H. Geissel and R. Gernhauser and A. Gumberidze and M. N. Harakeh and A. -L. Hartig and M. Heil and S. Ilieva and N. Kalantar-Nayestanaki and O. Kiselev and H. Kollmus and C. Kozhuharov and A. Krasznahorkay and 8 Th. Kroll and M. Kuilman and C. Lederer-Woods and S. Litvinov and Yu. A. Litvinov and G. Lotay and J. Lubian and M. Mahjour-Shaei and M. Mutterer and D. Nagae and M. A. Naja and C. Nociforo and F. Nolden and N. Petridis and U. Popp and R. Reifarth and C. Rigollet and S. Roy and C. Scheidenberger and M. von Schmid and M. Steck and Th. Stohlker and B. Streicher and L. Stuhl and M. Thurauf and S. Trotsenko and T. Uesaka and H. Weick and J. S. Winfield and D. Winters and P. J. Woods and T. Yamaguchi and X. L. Yan and K. Yue and J. Zenihiro},
journal= {arXiv preprint arXiv:2503.05081},
year = {2025}
}