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The Chemistry, Recrystallization and Thermal Expansion of Brannerite from Akchatau, Kazakhstan

Numerous studies expose the potential of brannerite to become a good matrix, concentrating fission products and actinides. Minerals can complement the data collected from the synthetic materials and offer an advantage of a long-time exposure to radiation. Natural metamict brannerite from Akchatau, K...

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Autores principales: Chen, Ruiqi, Siidra, Oleg I., Firsova, Vera A., Arevalo-Lopez, Angel, Colmont, Marie, Ugolkov, Valery L., Bocharov, Vladimir N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9962792/
https://www.ncbi.nlm.nih.gov/pubmed/36837349
http://dx.doi.org/10.3390/ma16041719
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author Chen, Ruiqi
Siidra, Oleg I.
Firsova, Vera A.
Arevalo-Lopez, Angel
Colmont, Marie
Ugolkov, Valery L.
Bocharov, Vladimir N.
author_facet Chen, Ruiqi
Siidra, Oleg I.
Firsova, Vera A.
Arevalo-Lopez, Angel
Colmont, Marie
Ugolkov, Valery L.
Bocharov, Vladimir N.
author_sort Chen, Ruiqi
collection PubMed
description Numerous studies expose the potential of brannerite to become a good matrix, concentrating fission products and actinides. Minerals can complement the data collected from the synthetic materials and offer an advantage of a long-time exposure to radiation. Natural metamict brannerite from Akchatau, Kazakhstan, and its annealed sample were studied by EPMA, Raman spectroscopy, TGA, DSC, XRD and HTXRD. The radioactivity of pristine and annealed samples of brannerite was measured. Brannerite from Akchatau is characterized by the absence of significant amounts of REE and yttrium. The studied brannerite regains its structure at a temperature ~650 °C, revealed by the HTXRD and DSC. HTXRD was also performed on the annealed recrystallized brannerite. The thermal expansion for brannerite has been determined for the first time. The brannerite structure expands anisotropically with temperature increase. All the thermal expansion coefficients are positive except for α(β). The decreasing beta parameter indicates a “shear structural deformation“. The angle between the 1st axis of the tensor and the crystallographic a axis decreases with the increase of the temperature. The structure expands mostly in the α(11) direction, approaching the bisector of the β angle. Brannerite has a low CTE at room temperature—α(v) = 16 × 10(−6) °C(−1), which increases up to 39.4 × 10(−6) °C(−1) at 1100 °C. In general, the thermal stability of brannerite is comparable to that of the other perspective oxide radioactive waste-immobilizing matrices (e.g., Ln(2)Zr(2)O(7), CePO(4), CaTiO(3), CaZrTi(2)O(7)). The calculated thermal expansion of brannerite and the understanding of its underlying crystal chemical mechanisms may contribute to the behavior prediction of the material (both metamict and crystalline) at high temperatures.
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spelling pubmed-99627922023-02-26 The Chemistry, Recrystallization and Thermal Expansion of Brannerite from Akchatau, Kazakhstan Chen, Ruiqi Siidra, Oleg I. Firsova, Vera A. Arevalo-Lopez, Angel Colmont, Marie Ugolkov, Valery L. Bocharov, Vladimir N. Materials (Basel) Article Numerous studies expose the potential of brannerite to become a good matrix, concentrating fission products and actinides. Minerals can complement the data collected from the synthetic materials and offer an advantage of a long-time exposure to radiation. Natural metamict brannerite from Akchatau, Kazakhstan, and its annealed sample were studied by EPMA, Raman spectroscopy, TGA, DSC, XRD and HTXRD. The radioactivity of pristine and annealed samples of brannerite was measured. Brannerite from Akchatau is characterized by the absence of significant amounts of REE and yttrium. The studied brannerite regains its structure at a temperature ~650 °C, revealed by the HTXRD and DSC. HTXRD was also performed on the annealed recrystallized brannerite. The thermal expansion for brannerite has been determined for the first time. The brannerite structure expands anisotropically with temperature increase. All the thermal expansion coefficients are positive except for α(β). The decreasing beta parameter indicates a “shear structural deformation“. The angle between the 1st axis of the tensor and the crystallographic a axis decreases with the increase of the temperature. The structure expands mostly in the α(11) direction, approaching the bisector of the β angle. Brannerite has a low CTE at room temperature—α(v) = 16 × 10(−6) °C(−1), which increases up to 39.4 × 10(−6) °C(−1) at 1100 °C. In general, the thermal stability of brannerite is comparable to that of the other perspective oxide radioactive waste-immobilizing matrices (e.g., Ln(2)Zr(2)O(7), CePO(4), CaTiO(3), CaZrTi(2)O(7)). The calculated thermal expansion of brannerite and the understanding of its underlying crystal chemical mechanisms may contribute to the behavior prediction of the material (both metamict and crystalline) at high temperatures. MDPI 2023-02-18 /pmc/articles/PMC9962792/ /pubmed/36837349 http://dx.doi.org/10.3390/ma16041719 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chen, Ruiqi
Siidra, Oleg I.
Firsova, Vera A.
Arevalo-Lopez, Angel
Colmont, Marie
Ugolkov, Valery L.
Bocharov, Vladimir N.
The Chemistry, Recrystallization and Thermal Expansion of Brannerite from Akchatau, Kazakhstan
title The Chemistry, Recrystallization and Thermal Expansion of Brannerite from Akchatau, Kazakhstan
title_full The Chemistry, Recrystallization and Thermal Expansion of Brannerite from Akchatau, Kazakhstan
title_fullStr The Chemistry, Recrystallization and Thermal Expansion of Brannerite from Akchatau, Kazakhstan
title_full_unstemmed The Chemistry, Recrystallization and Thermal Expansion of Brannerite from Akchatau, Kazakhstan
title_short The Chemistry, Recrystallization and Thermal Expansion of Brannerite from Akchatau, Kazakhstan
title_sort chemistry, recrystallization and thermal expansion of brannerite from akchatau, kazakhstan
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9962792/
https://www.ncbi.nlm.nih.gov/pubmed/36837349
http://dx.doi.org/10.3390/ma16041719
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