Half-life determination of heavy ions in a storage ring considering feeding and depleting background processes
R. J. Chen, G. Leckenby, R. S. Sidhu, J. Glorius, M. S. Sanjari, Yu. A. Litvinov, F. C. Akinci, M. Bai, K. Blaum, F. Bosch, C. Brandau, T. Dickel, I. Dillmann, D. Dmytriiev, T. Faestermann, O. Forstner, B. Franczak, B. S. Gao, H. Geissel, R. Gernh\"auser, C. Griffin

TL;DR
This paper develops a comprehensive model for heavy-ion decay in storage rings, accounting for charge exchange and other processes, to improve the accuracy of half-life measurements of highly charged ions.
Contribution
It introduces a set of differential equations that incorporate various atomic and nuclear processes, enabling more precise decay curve simulations in storage ring experiments.
Findings
Accurately models decay curves considering charge exchange processes
Provides a simplified method for measuring half-lives of highly charged ions
Demonstrates good agreement between simulations and experimental data
Abstract
Heavy-ion storage rings have relatively large momentum acceptance which allows for multiple ion species to circulate at the same time. This needs to be considered in radioactive decay measurements of highly charged ions, where atomic charge exchange reactions can significantly alter the intensities of parent and daughter ions. In this study, we investigate this effect using the decay curves of ion numbers in the recent Tl bound-state beta decay experiment conducted using the Experimental Storage Ring at GSI Darmstadt. To understand the intricate dynamics of ion numbers, we present a set of differential equations that account for various atomic and nuclear reaction processes-bound-state beta decay, atomic electron recombination and capture, and electron ionization. By incorporating appropriate boundary conditions, we develop a set of differential equations that accurately…
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