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Adsorption of uranium composites onto saltrock oxides – experimental and theoretical study.

Authors :
Ivanova, Bojidarka
Spiteller, Michael
Source :
Journal of Environmental Radioactivity. Sep2014, Vol. 135, p75-83. 9p.
Publication Year :
2014

Abstract

The study encompassed experimental mass spectrometric and theoretical quantum chemical studies on adsorption of uranium species in different oxidation states of the metal ion, and oxides of U x O y n+ type, where x = 1 or 3, y = 2 or 8, and n = 0, 1 or 2 onto nanosize-particles of saltrock oxides MO (M = MgII, CaII, NiII, CoII, SrII or BaII), M2O y (M = AuIII or AgI, y = 3 or 1) silicates 3Al2O3.2SiO2, natural kaolinite (Al2O2·2SiO2·2H2O), illite (K0.78Ca0.02Na0.02(Mg0.34Al1.69FeIII 0.02)[Si3.35Al0.65]O10(OH)2·nH2O), CaSiO3, 3MgO·4SiO2,H2O, and M1M2(SiO4)X2 (M1 = M2 = Al or M1 = K, M2 = Al, X = F or Cl), respectively. The UV-MALDI-Orbitrap mass spectrometry was utilized in solid-state and semi-liquid colloidal state, involving the laser ablation at λ ex = 337.2 nm. The theoretical modeling and experimental design was based on chemical-, physico-chemical, physical and biological processes involving uranium species under environmental conditions. Therefore, the results reported are crucial for quality control and monitoring programs for assessment of radionuclide migration. They impact significantly the methodology for evaluation of human health risk from radioactive contamination. The study has importance for understanding the coordination and red-ox chemistry of uranium compounds as well. Due to the double nature of uranium between rare element and superconductivity like materials as well as variety of oxidation states ∈ (+1)–(+6), the there remain challenging areas for theoretical and experimental research, which are of significant importance for management of nuclear fuel cycles and waste storage. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0265931X
Volume :
135
Database :
Academic Search Index
Journal :
Journal of Environmental Radioactivity
Publication Type :
Academic Journal
Accession number :
96788027
Full Text :
https://doi.org/10.1016/j.jenvrad.2014.03.019