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Staiger, H.; Mondeel, G.; Blundell, S_A; Dipti; O'Neil, G.; Silwal, R.; Lapierre, A.; Gwinner, G.; Tan, J_N; Gillaspy, J_D; et al (, Physical Review A)
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Yang, Y; Dipti; Gall, AC; Brickhouse, N; Staiger, H; O'Neil, G; Szypryt, P; Foster, A; Schultz, D; Naing, A; et al (, Journal of Instrumentation)Abstract Charge-exchange recombination with neutral atoms significantly influences the ionization balance in electron beam ion traps (EBIT) because its cross section is relatively large compared to cross sections of electron collision induced processes. Modeling the highly charged ion cloud requires the estimate of operating parameters, such as electron beam energy and density, the density of neutral atoms, and the relative velocities of collision partners. Uncertainty in the charge-exchange cross section can dominate the overall uncertainty in EBIT experiments, especially when it compounds with the uncertainties of experimental parameters that are difficult to determine. We present measured and simulated spectra of few-electron Fe ions, where we used a single charge-exchange factor to reduce the number of free parameters in the model. The deduction of the charge-exchange factor from the ratio of Li-like and He-like features allows for predicting the intensity of H-like lines in the spectra.more » « lessFree, publicly-accessible full text available April 1, 2026
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Hosier, A; Dipti; Blundell, S A; Lapierre, A; Silwal, R; Gwinner, G; Tan, J N; Naing, A; Gillaspy, J D; Yang, Y; et al (, Physical Review Research)We report on a method for determining the absolute nuclear charge radius of high- elements using extreme-ultraviolet spectroscopy of highly charged Na-like ions in tandem with highly accurate atomic structure calculations of transition energy differences. The application of this method has reduced the nuclear charge radius uncertainty of by a factor of 8 from the currently accepted literature value, with a recently reported charge radius of 5.435(12) fm. The result reduces the charge radius uncertainty along the full Ir isotopic chain when combined with prior optical isotope shift measurements. The technique utilizes only a few million ions stored in an ion trap, which should apply to measurements with small quantities of radioactive nuclei. Published by the American Physical Society2025more » « lessFree, publicly-accessible full text available February 1, 2026
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