Heat-induced changes in speciation and extraction of uranium associated with sheet silicate minerals
Three samples of gouge from a U-mineralised fault, and two model samples, montmorillonite and muscovite, spiked with U, were heat-treated at a range of temperatures up to 1100 °C. Mineralogical changes were followed by thermal analysis, powder XRD and electron microscopy, and U extractability was me...
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Published in | Applied geochemistry Vol. 18; no. 8; pp. 1121 - 1135 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
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Elsevier Ltd
01.08.2003
Elsevier |
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Abstract | Three samples of gouge from a U-mineralised fault, and two model samples, montmorillonite and muscovite, spiked with U, were heat-treated at a range of temperatures up to 1100 °C. Mineralogical changes were followed by thermal analysis, powder XRD and electron microscopy, and U extractability was measured by extraction with NH
4
+. Changes in U speciation in the montmorillonite sample were followed using EXAFS spectroscopy. On heating, the minerals progressively dehydrate, dehydroxylate and eventually decompose to form new phases in a glassy matrix. In the case of montmorillonite (90% of U extractable from unheated material), U extractability increased slightly on heating to temperatures around 400 °C. Almost 50% of U was extracted from unheated muscovite, and this increased slightly by 450 °C. Above 500–600 °C, U extractability from both montmorillonite and muscovite declined to very low levels, reflecting dehydration of the uranyl ion and trapping in the new phases and glassy matrix. Uranium extractability from the natural samples was much lower in all cases (0.25–5% of the total before heating). In 2 samples, a significant increase in U extraction was associated with dehydroxylation at around 600 °C, followed by a decrease to very low levels at higher temperatures. Uranium extraction from the third natural sample, which contained X-ray amorphous U minerals, decreased steadily on heating. The results show that changes in U extraction can be related to structural and morphological changes in sheet silicate minerals. Heat treatment has potential to fix U but only if temperatures above 800 °C are reached. If only lower temperatures, in the range 400–600 °C, are used, then U extraction may increase. |
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AbstractList | Thermal treatment to immobilize contaminants and wastes have been used for various metals, including uranium (U). The possibility that sorbed U may become trapped in clay mineral-rich material at temperatures lower than those used for vitrification was examined. Single mineral spiked samples and more complex, natural samples from a U mineralization site in the U.K., were examined over a range of temperatures from room temperature to 1100 degree C. Mineralogical changes following heat treatment were examined by thermal analysis, powder X-ray diffraction, and electron microscopy. U extractability was tested also. On heating, minerals dehydrate progressively and eventually decompose to form new phases in a glassy matrix. In montmorillonite, extractability increased slightly on heating. About 50% of U was extracted from unheated muscovite. Above 500-600 degree C, U extractability from these samples dropped to very low levels. U extractability from natural samples was much lower in all cases. These and other results indicate that U extraction may be related to structural and morphological changes in sheet silicate minerals. Heat treatment could potentially fix U but only at temperatures above 800 degree C. Three samples of gouge from a U-mineralised fault, and two model samples, montmorillonite and muscovite, spiked with U, were heat-treated at a range of temperatures up to 1100 °C. Mineralogical changes were followed by thermal analysis, powder XRD and electron microscopy, and U extractability was measured by extraction with NH 4 +. Changes in U speciation in the montmorillonite sample were followed using EXAFS spectroscopy. On heating, the minerals progressively dehydrate, dehydroxylate and eventually decompose to form new phases in a glassy matrix. In the case of montmorillonite (90% of U extractable from unheated material), U extractability increased slightly on heating to temperatures around 400 °C. Almost 50% of U was extracted from unheated muscovite, and this increased slightly by 450 °C. Above 500–600 °C, U extractability from both montmorillonite and muscovite declined to very low levels, reflecting dehydration of the uranyl ion and trapping in the new phases and glassy matrix. Uranium extractability from the natural samples was much lower in all cases (0.25–5% of the total before heating). In 2 samples, a significant increase in U extraction was associated with dehydroxylation at around 600 °C, followed by a decrease to very low levels at higher temperatures. Uranium extraction from the third natural sample, which contained X-ray amorphous U minerals, decreased steadily on heating. The results show that changes in U extraction can be related to structural and morphological changes in sheet silicate minerals. Heat treatment has potential to fix U but only if temperatures above 800 °C are reached. If only lower temperatures, in the range 400–600 °C, are used, then U extraction may increase. |
Author | Mosselmans, J.Fred W. Ritherdon, Benjamin Livens, Francis R. Braithwaite, Anna Curtis, Charles D. Hughes, Colin R. Richardson, Steve |
Author_xml | – sequence: 1 givenname: Benjamin surname: Ritherdon fullname: Ritherdon, Benjamin organization: Department of Earth Sciences, University of Manchester, Oxford Road, Manchester M13 9PL, UK – sequence: 2 givenname: Colin R. surname: Hughes fullname: Hughes, Colin R. organization: Department of Earth Sciences, University of Manchester, Oxford Road, Manchester M13 9PL, UK – sequence: 3 givenname: Charles D. surname: Curtis fullname: Curtis, Charles D. organization: Department of Earth Sciences, University of Manchester, Oxford Road, Manchester M13 9PL, UK – sequence: 4 givenname: Francis R. surname: Livens fullname: Livens, Francis R. email: francis.livens@man.ac.uk organization: Centre for Radiochemistry Research, Department of Chemistry, University of Manchester, Oxford Road, Manchester M13 9PL, UK – sequence: 5 givenname: J.Fred W. surname: Mosselmans fullname: Mosselmans, J.Fred W. organization: CLRC Daresbury Laboratory, Warrington WA4 4AD, UK – sequence: 6 givenname: Steve surname: Richardson fullname: Richardson, Steve organization: Research and Technology, BNFL Sellafield, Seascale, Cumbria CA20 1PG, UK – sequence: 7 givenname: Anna surname: Braithwaite fullname: Braithwaite, Anna organization: Research and Technology, BNFL Sellafield, Seascale, Cumbria CA20 1PG, UK |
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Keywords | models muscovite X-rays mica heat treatment dehydroxylation faults smectite speciation montmorillonite materials spectroscopy temperature clay minerals silicates electron microscopy sheet silicates dehydration ions uranium thermal analysis |
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Snippet | Three samples of gouge from a U-mineralised fault, and two model samples, montmorillonite and muscovite, spiked with U, were heat-treated at a range of... Thermal treatment to immobilize contaminants and wastes have been used for various metals, including uranium (U). The possibility that sorbed U may become... |
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SubjectTerms | Earth sciences Earth, ocean, space Engineering and environment geology. Geothermics Exact sciences and technology Geochemistry Pollution, environment geology |
Title | Heat-induced changes in speciation and extraction of uranium associated with sheet silicate minerals |
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