DOE OSTI · 3606603
Investigation Into LiCl-LiF+Li 2 O as a Low Temperature Electrolyte in Direct Electrolytic Reduction of UO 2
Abstract
Direct electrolytic reduction (DER) of UO 2 in a binary LiCl-Li2O (1–3 wt%) at 650 °C has been widely reported. The process temperature can be reduced to 550 °C in theory by using a near eutectic ternary LiCl-LiF+Li 2O (∼2 wt%) electrolyte, which will result in substantial reduction in rate of salt vaporization. The feasibility of using the ternary electrolyte for the process was tested via material compatibility testing, electrochemical polarization testing, and controlled potential or current DER experiments. MgO, Pt, and 625 nickel samples were each contacted with the ternary salt for 168 h. Negligible changes to dimensions and mass of the samples were measured, and concentrations of corrosion products in the salt were 102 ppm or less. O2−oxidation was observed to occur at a lower potential than Cl-or F-on a Pt anode. DER of UO2was performed in six trials. Process variables included type of reference electrode, electrochemical control method, type of cathode basket, and electrolyte composition. UO 2conversion ranged from 28.2 to 99.9 % , and current efficiency ranged from 38 to 52%. Overall, results indicate that the use of the ternary salt is feasible for DER.
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Yankey, Jacob [University of Utah] (ORCID:0000000239568459), Leavitt, Cam [University of Utah] (ORCID:0000000200990097), Holland, Justin [Y-12 National Security Complex, Oak Ridge, Tennessee 37830,] (ORCID:0009000852243318), Fitzhugh, Richard [Y-12 National Security Complex, Oak Ridge, Tennessee 37830,] (ORCID:0000000210260442), Simpson, Michael F. [University of Utah] (ORCID:000900075712007X). 2026-06-29. Investigation Into LiCl-LiF+Li 2 O as a Low Temperature Electrolyte in Direct Electrolytic Reduction of UO 2. https://doi.org/10.1149/1945-7111/ae7e5b
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