Electrodeposition of UO2 at Mild Temperatures in Phosphonium Ionic Liquids: A Combined Theoretical and Experimental
Jie Jiang1,2, Zongtai Wang1,2, Xuesong Peng1
1School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin 150001, China.
Abstract:
Dry reprocessing of spent nuclear fuel traditionally relies on high-temperature molten salts with high energy consumption and corrosion. Ionic liquids offer a promising low-temperature alternative due to their low melting points and wide electrochemical windows. Here, we use the room-temperature phosphonium ionic liquid tributylmethylphosphonium chloride ([P1444]Cl) to electrodeposit and recover uranium as UO2. Quantum chemical calculations reveal that the [P1444]+ cation has a uniformly low surface electrostatic potential and weak P-Cl binding energy, explaining its liquid state at ambient temperature. Molecular dynamics simulations show that uranyl mainly forms UO2Cl42- complexes. Electrochemical measurements indicate that the U(VI) → U(IV) reduction is an irreversible, diffusion-controlled two-electron process. Potentiostatic deposition at -1.3 to -2.0 V yields a dense amorphous UO2 layer; after annealing, XRD confirms conversion to crystalline UO2. These findings demonstrate the feasibility of [P1444]Cl for low-temperature, low-corrosion uranium recovery and provide insights into uranyl speciation and reduction in ionic liquid media.
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