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Uptake and speciation of uranium in synthetic gypsum ({CaSO} 4 {\textbullet}2H 2 O): Applications to radioactive mine tailings
- Publication Year :
- 2018
-
Abstract
- Phosphogypsum formed from the production of phosphoric acid represents by far the biggest accumulation of gypsum-rich wastes in the world and commonly contains elevated radionuclides, including uranium, as well as other heavy metals and metalloids. Therefore, billions-of-tons of phosphogypsum stockpiled worldwide not only possess serious environmental problems but also represent a potential uranium resource. Gypsum is also a major solid constituent in many other types of radioactive mine tailings, which stems from the common usage of sulfuric acid in extraction processes. Therefore, management and remediation of radioactive mine tailings as well as future beneficiation of uranium from phosphogysum all require detailed knowledge about the nature and behavior of uranium in gypsum. However, little is known about the uptake mechanism or speciation of uranium in gypsum. In this study, synthesis experiments suggest an apparent pH control on the uptake of uranium in gypsum at ambient conditions: increase in U from 16 μg/g at pH = 6.5 to 339 μg/g at pH = 9.5. Uranium L 3 -edge synchrotron X-ray absorption spectroscopic analyses of synthetic gypsum show that uranyl (UO 2 ) 2+ at the Ca site is the dominant species. The EXAFS fitting results also indicate that uranyl in synthetic gypsum occurs most likely as carbonate complexes and yields an average U-O distance ∼0.25 A shorter than the average Ca-O distance, signifying a marked local structural distortion. Applications to phosphogypsum from the New Wales phosphoric acid plant (Florida, USA) and uranium mine tailings from the Key Lake mill (Saskatchewan, Canada) show that gypsum is an important carrier of uranium over a wide range of pH and controls the fate of this radionuclide in mine tailings. Also, development of new technologies for recovering U from phosphogypsum in the future must consider lattice-bound uranyl in gypsum.
- Subjects :
- inorganic chemicals
Gypsum
Environmental remediation
Health, Toxicology and Mutagenesis
chemistry.chemical_element
Mineralogy
Phosphogypsum
010501 environmental sciences
engineering.material
010502 geochemistry & geophysics
complex mixtures
01 natural sciences
chemistry.chemical_compound
Environmental Chemistry
Waste Management and Disposal
0105 earth and related environmental sciences
technology, industry, and agriculture
Beneficiation
General Medicine
Uranium
Uranyl
Pollution
Tailings
chemistry
Environmental chemistry
engineering
Carbonate
Geology
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Accession number :
- edsair.doi.dedup.....11352ea1a5df82f957436fec34e7364d