Electrochemical Analysis of Zirconiumin Aqueous and Organic Media
- 1 Ecole Supérieure Polytechnique, Université Cheikh Anta DIOP, Dakar, Sénégal
- 2 Ecole Supérieure Polytechnique, Université Cheikh Anta DIOP, Dakar, Sénégal
- 3 Laboratoire de Génie Chimique, Université de Toulouse III—Paul Sabatier, Toulouse, France
- 4 Ecole Supérieure Polytechnique, Université Cheikh Anta DIOP, Dakar, Sénégal
- 5 Ecole Supérieure Polytechnique, Université Cheikh Anta DIOP, Dakar, Sénégal
Abstract
For the challenging nature of the zirconium environment analysis, this study consists to analyze the electrochemical behavior of Zirconium in both aqueous and organic media. To that end first the electrolytic media was selected on the basis of the Pourbaix potential-pH diagram, which provides informations on the predominance of Zr (IV) ion and Zr in aqueous media. In aqueous media, analyzes were first carried out in acidic media then in basic media. Studies have thus revealed that the acidic environment is not favourable for the electrochemical analysis of zirconium. Voltammograms obtained in an acidic environment show no zirconium detection signal; this is due to the strong presence of H + ions in the solution. We have also observed in acidic media the phenomenon of passivation of the electrode surface. In aqueous alkaline media (pH = 13), we have drawn in reduction several Intensity-Potential curves by fixingsome technical parameterslike scanning speed, rotation speed of the electrode. The obtained voltammograms show cathodic waves, starting from -1.5 V/DHW and attributed to the reduction of Zr (IV) to Zr (0). The last phase of this study focused on the electrochemical analysis of zirconium in an organic media. In this media, several intensity-potential curves were plotted in reduction and in cyclic voltammetry with various parameters. Through several reduction analysis, the Zr (IV) was reduced to Zr (0) to the potential of -1.5 V/DHW. The electrochemical analysis of zirconium in organic media seems globally easier to achieve thanks to its large solvent window ( i.e. dimethylformamide (DMF) solvent window > 6 V).
- DENSLEY (2015) Technical Handbook on Zirconium and Zirconium Compounds. 2nd Edition.
- Xu, L., Xiao, Y., Van Sandwijk, A., Xu, Q. and Yang, Y. (2015) Production of Nuclear Grade Zirconium: A Review. Journal of Nuclear Materials, 466, 21-28. https://doi.org/10.1016/j.jnucmat.2015.07.010
- Ashcheulov, P., Skoda, R., Skarohlid, J., Taylor, A., Fendrych, F. and Kratochvílova, I. (2016) Layer Protecting the Surface of Zirconium Used in Nuclear Reactors. Recent Patents on Nanotechnology, 10, 59-65. https://www.ingentaconnect.com https://doi.org/10.2174/2210315506999160304132946
- Yan, X. and Fray, D. (2010) Molten Salt Electrolysis for Sustainable Metal Extraction and Materials Processing.
- Xi, X., et al. (2020) Applications of Molten Salt and Progress of Molten Salt Electrolysis in Secondary Metal Resource Recovery. International Journal of Minerals, Metallurgy and Materials, 27, 1599-1617. https://doi.org/10.1007/s12613-020-2175-0
- Quaranta, D., Massot, L., Gibilaro, M., Mendes, E., Serp, J. and Chamelot, P. (2018) Zirconium(IV) Electrochemical Behavior in Molten LiF-NaF. Electrochimica Acta, 265, 586-593. https://doi.org/10.1016/j.electacta.2018.01.213
- Liu, K., et al. (2017) Condition Dependence of Zr Electrochemical Reactions and Morphological Evolution of Zr Deposits in Molten Salt. Science China Chemistry, 60, 264-274. https://doi.org/10.1007/s11426-016-0321-x
- Xu, L., Xiao, Y., Xu, Q., Song, Q. and Yang, Y. (2017) Electrochemistry of Zirconium in Molten Chlorides. International Journal of Electrochemical Science, 12, 6393-6403. https://doi.org/10.20964/2017.07.51
- Hoover, R.O., Yoon, D. and Phongikaroon, S. (2016) Effects of Temperature, Concentration, and Uranium Chloride Mixture on Zirconium Electrochemical Studies in LiCl-KCl Eutectic Salt. Journal of Nuclear Materials, 476, 179-187. https://doi.org/10.1016/j.jnucmat.2016.04.037
- Xu, L., et al. (2017) Electrochemical Studies on the Redox Behavior of Zirconium in the LiF-NaF Eutectic Melt. Journal of Nuclear Materials, 488, 295-301. https://doi.org/10.1016/j.jnucmat.2017.03.028
- Murali Krishna, G., Suneesh, A.S., Venkatesan, K.A. and Antony, M.P. (2016) Electrochemical Behavior of Zirconium(IV) in 1-Butyl-3-Methylimidazolium Bis(Tri-fluoromethylsulfonyl) Imide Ionic Liquid. Journal of Electroanalytical Chemistry, 776, 120-126. https://doi.org/10.1016/j.jelechem.2016.07.015
- Gobert, E. (1994) Contribution a L’Etude du Comportement ELectrochimique du Zirconium en Milieu Aqueux: Applications Aux Depots ELectrolytiques de Metaux.