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Studies of aqueous U(iv) equilibrium and nanoparticle formation kinetics using spectrophotometric reaction modeling analysis

Hydrolysis of tetravalent uranium (U(iv)) and U(iv)-nanoparticle formation kinetics were examined over a wide range of temperatures using spectrophotometric reaction modeling analysis. The characteristic absorption bands representing U(4+), U(OH)(3+), and a proposed oxohydroxo species were newly ide...

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Autores principales: Cha, Wansik, Kim, Hee-Kyung, Cho, Hyejin, Cho, Hye-Ryun, Jung, Euo Chang, Lee, Seung Yeop
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/PMC9057037/
https://www.ncbi.nlm.nih.gov/pubmed/35517939
http://dx.doi.org/10.1039/d0ra05352j
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author Cha, Wansik
Kim, Hee-Kyung
Cho, Hyejin
Cho, Hye-Ryun
Jung, Euo Chang
Lee, Seung Yeop
author_facet Cha, Wansik
Kim, Hee-Kyung
Cho, Hyejin
Cho, Hye-Ryun
Jung, Euo Chang
Lee, Seung Yeop
author_sort Cha, Wansik
collection PubMed
description Hydrolysis of tetravalent uranium (U(iv)) and U(iv)-nanoparticle formation kinetics were examined over a wide range of temperatures using spectrophotometric reaction modeling analysis. The characteristic absorption bands representing U(4+), U(OH)(3+), and a proposed oxohydroxo species were newly identified in the UV region (190–300 nm). Dynamic absorption band changes in the UV and visible regions (360–800 nm) were explored to reevaluate the binary ion interaction coefficients for U(iv) ions and the thermodynamic constants of the primary hydrolysis reaction, including complexation constants, enthalpy, and entropy. No further hydrolysis equilibrium beyond the formation of U(OH)(3+) was identified. Instead, an irreversible transformation of U(iv) ions to U(iv)-nanoparticles (NPs) was found to occur exclusively via the formation of a new intermediate species possessing characteristic absorption bands. The kinetic analysis, based on a two-step, pseudo-first-order reaction model, revealed that the rate of the initial step producing the intermediates is highly temperature-dependent with the measured kinetic energy barrier of ∼188 kJ mol(−1). With additional experimental evidence, we conclude that the intermediates are oligomeric oxohydroxo U(iv) species occurring from the condensation of U(iv) ions and simultaneously participating in the nucleation and growth process of UO(2)(cr)-NPs.
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spelling pubmed-90570372022-05-04 Studies of aqueous U(iv) equilibrium and nanoparticle formation kinetics using spectrophotometric reaction modeling analysis Cha, Wansik Kim, Hee-Kyung Cho, Hyejin Cho, Hye-Ryun Jung, Euo Chang Lee, Seung Yeop RSC Adv Chemistry Hydrolysis of tetravalent uranium (U(iv)) and U(iv)-nanoparticle formation kinetics were examined over a wide range of temperatures using spectrophotometric reaction modeling analysis. The characteristic absorption bands representing U(4+), U(OH)(3+), and a proposed oxohydroxo species were newly identified in the UV region (190–300 nm). Dynamic absorption band changes in the UV and visible regions (360–800 nm) were explored to reevaluate the binary ion interaction coefficients for U(iv) ions and the thermodynamic constants of the primary hydrolysis reaction, including complexation constants, enthalpy, and entropy. No further hydrolysis equilibrium beyond the formation of U(OH)(3+) was identified. Instead, an irreversible transformation of U(iv) ions to U(iv)-nanoparticles (NPs) was found to occur exclusively via the formation of a new intermediate species possessing characteristic absorption bands. The kinetic analysis, based on a two-step, pseudo-first-order reaction model, revealed that the rate of the initial step producing the intermediates is highly temperature-dependent with the measured kinetic energy barrier of ∼188 kJ mol(−1). With additional experimental evidence, we conclude that the intermediates are oligomeric oxohydroxo U(iv) species occurring from the condensation of U(iv) ions and simultaneously participating in the nucleation and growth process of UO(2)(cr)-NPs. The Royal Society of Chemistry 2020-10-06 /pmc/articles/PMC9057037/ /pubmed/35517939 http://dx.doi.org/10.1039/d0ra05352j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Cha, Wansik
Kim, Hee-Kyung
Cho, Hyejin
Cho, Hye-Ryun
Jung, Euo Chang
Lee, Seung Yeop
Studies of aqueous U(iv) equilibrium and nanoparticle formation kinetics using spectrophotometric reaction modeling analysis
title Studies of aqueous U(iv) equilibrium and nanoparticle formation kinetics using spectrophotometric reaction modeling analysis
title_full Studies of aqueous U(iv) equilibrium and nanoparticle formation kinetics using spectrophotometric reaction modeling analysis
title_fullStr Studies of aqueous U(iv) equilibrium and nanoparticle formation kinetics using spectrophotometric reaction modeling analysis
title_full_unstemmed Studies of aqueous U(iv) equilibrium and nanoparticle formation kinetics using spectrophotometric reaction modeling analysis
title_short Studies of aqueous U(iv) equilibrium and nanoparticle formation kinetics using spectrophotometric reaction modeling analysis
title_sort studies of aqueous u(iv) equilibrium and nanoparticle formation kinetics using spectrophotometric reaction modeling analysis
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9057037/
https://www.ncbi.nlm.nih.gov/pubmed/35517939
http://dx.doi.org/10.1039/d0ra05352j
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