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Structural properties of ultra-small thorium and uranium dioxide nanoparticles embedded in a covalent organic framework

We report the structural properties of ultra-small ThO(2) and UO(2) nanoparticles (NPs), which were synthesized without strong binding surface ligands by employing a covalent organic framework (COF-5) as an inert template. The resultant NPs were used to observe how structural properties are affected...

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Autores principales: Moreau, Liane M., Herve, Alexandre, Straub, Mark D., Russo, Dominic R., Abergel, Rebecca J., Alayoglu, Selim, Arnold, John, Braun, Augustin, Deblonde, Gauthier J. P., Liu, Yangdongling, Lohrey, Trevor D., Olive, Daniel T., Qiao, Yusen, Rees, Julian A., Shuh, David K., Teat, Simon J., Booth, Corwin H., Minasian, Stefan G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8159168/
https://www.ncbi.nlm.nih.gov/pubmed/34122920
http://dx.doi.org/10.1039/c9sc06117g
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author Moreau, Liane M.
Herve, Alexandre
Straub, Mark D.
Russo, Dominic R.
Abergel, Rebecca J.
Alayoglu, Selim
Arnold, John
Braun, Augustin
Deblonde, Gauthier J. P.
Liu, Yangdongling
Lohrey, Trevor D.
Olive, Daniel T.
Qiao, Yusen
Rees, Julian A.
Shuh, David K.
Teat, Simon J.
Booth, Corwin H.
Minasian, Stefan G.
author_facet Moreau, Liane M.
Herve, Alexandre
Straub, Mark D.
Russo, Dominic R.
Abergel, Rebecca J.
Alayoglu, Selim
Arnold, John
Braun, Augustin
Deblonde, Gauthier J. P.
Liu, Yangdongling
Lohrey, Trevor D.
Olive, Daniel T.
Qiao, Yusen
Rees, Julian A.
Shuh, David K.
Teat, Simon J.
Booth, Corwin H.
Minasian, Stefan G.
author_sort Moreau, Liane M.
collection PubMed
description We report the structural properties of ultra-small ThO(2) and UO(2) nanoparticles (NPs), which were synthesized without strong binding surface ligands by employing a covalent organic framework (COF-5) as an inert template. The resultant NPs were used to observe how structural properties are affected by decreasing grain size within bulk actinide oxides, which has implications for understanding the behavior of nuclear fuel materials. Through a comprehensive characterization strategy, we gain insight regarding how structure at the NP surface differs from the interior. Characterization using electron microscopy and small-angle X-ray scattering indicates that growth of the ThO(2) and UO(2) NPs was confined by the pores of the COF template, resulting in sub-3 nm particles. X-ray absorption fine structure spectroscopy results indicate that the NPs are best described as ThO(2) and UO(2) materials with unpassivated surfaces. The surface layers of these particles compensate for high surface energy by exhibiting a broader distribution of Th–O and U–O bond distances despite retaining average bond lengths that are characteristic of bulk ThO(2) and UO(2). The combined synthesis and physical characterization efforts provide a detailed picture of actinide oxide structure at the nanoscale, which remains highly underexplored compared to transition metal counterparts.
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spelling pubmed-81591682021-06-11 Structural properties of ultra-small thorium and uranium dioxide nanoparticles embedded in a covalent organic framework Moreau, Liane M. Herve, Alexandre Straub, Mark D. Russo, Dominic R. Abergel, Rebecca J. Alayoglu, Selim Arnold, John Braun, Augustin Deblonde, Gauthier J. P. Liu, Yangdongling Lohrey, Trevor D. Olive, Daniel T. Qiao, Yusen Rees, Julian A. Shuh, David K. Teat, Simon J. Booth, Corwin H. Minasian, Stefan G. Chem Sci Chemistry We report the structural properties of ultra-small ThO(2) and UO(2) nanoparticles (NPs), which were synthesized without strong binding surface ligands by employing a covalent organic framework (COF-5) as an inert template. The resultant NPs were used to observe how structural properties are affected by decreasing grain size within bulk actinide oxides, which has implications for understanding the behavior of nuclear fuel materials. Through a comprehensive characterization strategy, we gain insight regarding how structure at the NP surface differs from the interior. Characterization using electron microscopy and small-angle X-ray scattering indicates that growth of the ThO(2) and UO(2) NPs was confined by the pores of the COF template, resulting in sub-3 nm particles. X-ray absorption fine structure spectroscopy results indicate that the NPs are best described as ThO(2) and UO(2) materials with unpassivated surfaces. The surface layers of these particles compensate for high surface energy by exhibiting a broader distribution of Th–O and U–O bond distances despite retaining average bond lengths that are characteristic of bulk ThO(2) and UO(2). The combined synthesis and physical characterization efforts provide a detailed picture of actinide oxide structure at the nanoscale, which remains highly underexplored compared to transition metal counterparts. The Royal Society of Chemistry 2020-04-28 /pmc/articles/PMC8159168/ /pubmed/34122920 http://dx.doi.org/10.1039/c9sc06117g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Moreau, Liane M.
Herve, Alexandre
Straub, Mark D.
Russo, Dominic R.
Abergel, Rebecca J.
Alayoglu, Selim
Arnold, John
Braun, Augustin
Deblonde, Gauthier J. P.
Liu, Yangdongling
Lohrey, Trevor D.
Olive, Daniel T.
Qiao, Yusen
Rees, Julian A.
Shuh, David K.
Teat, Simon J.
Booth, Corwin H.
Minasian, Stefan G.
Structural properties of ultra-small thorium and uranium dioxide nanoparticles embedded in a covalent organic framework
title Structural properties of ultra-small thorium and uranium dioxide nanoparticles embedded in a covalent organic framework
title_full Structural properties of ultra-small thorium and uranium dioxide nanoparticles embedded in a covalent organic framework
title_fullStr Structural properties of ultra-small thorium and uranium dioxide nanoparticles embedded in a covalent organic framework
title_full_unstemmed Structural properties of ultra-small thorium and uranium dioxide nanoparticles embedded in a covalent organic framework
title_short Structural properties of ultra-small thorium and uranium dioxide nanoparticles embedded in a covalent organic framework
title_sort structural properties of ultra-small thorium and uranium dioxide nanoparticles embedded in a covalent organic framework
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8159168/
https://www.ncbi.nlm.nih.gov/pubmed/34122920
http://dx.doi.org/10.1039/c9sc06117g
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