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Hydrotalcite Colloidal Stability and Interactions with Uranium(VI) at Neutral to Alkaline pH

[Image: see text] In the United Kingdom, decommissioning of legacy spent fuel storage facilities involves the retrieval of radioactive sludges that have formed as a result of corrosion of Magnox nuclear fuel. Retrieval of sludges may re-suspend a colloidal fraction of the sludge, thereby potentially...

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Autores principales: Foster, Chris, Shaw, Samuel, Neill, Thomas S., Bryan, Nick, Sherriff, Nick, Natrajan, Louise S., Wilson, Hannah, Lopez-Odriozola, Laura, Rigby, Bruce, Haigh, Sarah J., Zou, Yi-Chao, Harrison, Robert, Morris, Katherine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9098172/
https://www.ncbi.nlm.nih.gov/pubmed/35166554
http://dx.doi.org/10.1021/acs.langmuir.1c03179
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author Foster, Chris
Shaw, Samuel
Neill, Thomas S.
Bryan, Nick
Sherriff, Nick
Natrajan, Louise S.
Wilson, Hannah
Lopez-Odriozola, Laura
Rigby, Bruce
Haigh, Sarah J.
Zou, Yi-Chao
Harrison, Robert
Morris, Katherine
author_facet Foster, Chris
Shaw, Samuel
Neill, Thomas S.
Bryan, Nick
Sherriff, Nick
Natrajan, Louise S.
Wilson, Hannah
Lopez-Odriozola, Laura
Rigby, Bruce
Haigh, Sarah J.
Zou, Yi-Chao
Harrison, Robert
Morris, Katherine
author_sort Foster, Chris
collection PubMed
description [Image: see text] In the United Kingdom, decommissioning of legacy spent fuel storage facilities involves the retrieval of radioactive sludges that have formed as a result of corrosion of Magnox nuclear fuel. Retrieval of sludges may re-suspend a colloidal fraction of the sludge, thereby potentially enhancing the mobility of radionuclides including uranium. The colloidal properties of the layered double hydroxide (LDH) phase hydrotalcite, a key product of Magnox fuel corrosion, and its interactions with U(VI) are of interest. This is because colloidal hydrotalcite is a potential transport vector for U(VI) under the neutral-to-alkaline conditions characteristic of the legacy storage facilities and other nuclear decommissioning scenarios. Here, a multi-technique approach was used to investigate the colloidal stability of hydrotalcite and the U(VI) sorption mechanism(s) across pH 7–11.5 and with variable U(VI) surface loadings (0.01–1 wt %). Overall, hydrotalcite was found to form stable colloidal suspensions between pH 7 and 11.5, with some evidence for Mg(2+) leaching from hydrotalcite colloids at pH ≤ 9. For systems with U present, >98% of U(VI) was removed from the solution in the presence of hydrotalcite, regardless of pH and U loading, although the sorption mode was affected by both pH and U concentrations. Under alkaline conditions, U(VI) surface precipitates formed on the colloidal hydrotalcite nanoparticle surface. Under more circumneutral conditions, Mg(2+) leaching from hydrotalcite and more facile exchange of interlayer carbonate with the surrounding solution led to the formation of uranyl carbonate species (e.g., Mg(UO(2)(CO(3))(3))(2–)((aq))). Both X-ray absorption spectroscopy (XAS) and luminescence analysis confirmed that these negatively charged species sorbed as both outer- and inner-sphere tertiary complexes on the hydrotalcite surface. These results demonstrate that hydrotalcite can form pseudo-colloids with U(VI) under a wide range of pH conditions and have clear implications for understanding the uranium behavior in environments where hydrotalcite and other LDHs may be present.
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spelling pubmed-90981722022-05-13 Hydrotalcite Colloidal Stability and Interactions with Uranium(VI) at Neutral to Alkaline pH Foster, Chris Shaw, Samuel Neill, Thomas S. Bryan, Nick Sherriff, Nick Natrajan, Louise S. Wilson, Hannah Lopez-Odriozola, Laura Rigby, Bruce Haigh, Sarah J. Zou, Yi-Chao Harrison, Robert Morris, Katherine Langmuir [Image: see text] In the United Kingdom, decommissioning of legacy spent fuel storage facilities involves the retrieval of radioactive sludges that have formed as a result of corrosion of Magnox nuclear fuel. Retrieval of sludges may re-suspend a colloidal fraction of the sludge, thereby potentially enhancing the mobility of radionuclides including uranium. The colloidal properties of the layered double hydroxide (LDH) phase hydrotalcite, a key product of Magnox fuel corrosion, and its interactions with U(VI) are of interest. This is because colloidal hydrotalcite is a potential transport vector for U(VI) under the neutral-to-alkaline conditions characteristic of the legacy storage facilities and other nuclear decommissioning scenarios. Here, a multi-technique approach was used to investigate the colloidal stability of hydrotalcite and the U(VI) sorption mechanism(s) across pH 7–11.5 and with variable U(VI) surface loadings (0.01–1 wt %). Overall, hydrotalcite was found to form stable colloidal suspensions between pH 7 and 11.5, with some evidence for Mg(2+) leaching from hydrotalcite colloids at pH ≤ 9. For systems with U present, >98% of U(VI) was removed from the solution in the presence of hydrotalcite, regardless of pH and U loading, although the sorption mode was affected by both pH and U concentrations. Under alkaline conditions, U(VI) surface precipitates formed on the colloidal hydrotalcite nanoparticle surface. Under more circumneutral conditions, Mg(2+) leaching from hydrotalcite and more facile exchange of interlayer carbonate with the surrounding solution led to the formation of uranyl carbonate species (e.g., Mg(UO(2)(CO(3))(3))(2–)((aq))). Both X-ray absorption spectroscopy (XAS) and luminescence analysis confirmed that these negatively charged species sorbed as both outer- and inner-sphere tertiary complexes on the hydrotalcite surface. These results demonstrate that hydrotalcite can form pseudo-colloids with U(VI) under a wide range of pH conditions and have clear implications for understanding the uranium behavior in environments where hydrotalcite and other LDHs may be present. American Chemical Society 2022-02-15 2022-03-01 /pmc/articles/PMC9098172/ /pubmed/35166554 http://dx.doi.org/10.1021/acs.langmuir.1c03179 Text en © 2022 American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Foster, Chris
Shaw, Samuel
Neill, Thomas S.
Bryan, Nick
Sherriff, Nick
Natrajan, Louise S.
Wilson, Hannah
Lopez-Odriozola, Laura
Rigby, Bruce
Haigh, Sarah J.
Zou, Yi-Chao
Harrison, Robert
Morris, Katherine
Hydrotalcite Colloidal Stability and Interactions with Uranium(VI) at Neutral to Alkaline pH
title Hydrotalcite Colloidal Stability and Interactions with Uranium(VI) at Neutral to Alkaline pH
title_full Hydrotalcite Colloidal Stability and Interactions with Uranium(VI) at Neutral to Alkaline pH
title_fullStr Hydrotalcite Colloidal Stability and Interactions with Uranium(VI) at Neutral to Alkaline pH
title_full_unstemmed Hydrotalcite Colloidal Stability and Interactions with Uranium(VI) at Neutral to Alkaline pH
title_short Hydrotalcite Colloidal Stability and Interactions with Uranium(VI) at Neutral to Alkaline pH
title_sort hydrotalcite colloidal stability and interactions with uranium(vi) at neutral to alkaline ph
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9098172/
https://www.ncbi.nlm.nih.gov/pubmed/35166554
http://dx.doi.org/10.1021/acs.langmuir.1c03179
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