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Colloidal Model for the Prediction of the Extraction of Rare Earths Assisted by the Acidic Extractant

[Image: see text] We propose the statistical thermodynamic model for the prediction of the liquid–liquid extraction efficiency in the case of rare-earth metal cations using the common bis(2-ethyl-hexyl)phosphoric acid (HDEHP) extractant. In this soft matter-based approach, the solutes are modeled as...

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Autores principales: Špadina, Mario, Bohinc, Klemen, Zemb, Thomas, Dufrêche, Jean-François
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6488188/
https://www.ncbi.nlm.nih.gov/pubmed/30673246
http://dx.doi.org/10.1021/acs.langmuir.8b03846
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author Špadina, Mario
Bohinc, Klemen
Zemb, Thomas
Dufrêche, Jean-François
author_facet Špadina, Mario
Bohinc, Klemen
Zemb, Thomas
Dufrêche, Jean-François
author_sort Špadina, Mario
collection PubMed
description [Image: see text] We propose the statistical thermodynamic model for the prediction of the liquid–liquid extraction efficiency in the case of rare-earth metal cations using the common bis(2-ethyl-hexyl)phosphoric acid (HDEHP) extractant. In this soft matter-based approach, the solutes are modeled as colloids. The leading terms in free-energy representation account for: the complexation, the formation of a highly curved extractant film, lateral interactions between the different extractant head groups in the film, configurational entropy of ions and water molecules, the dimerization, and the acidity of the HDEHP extractant. We provided a full framework for the multicomponent study of extraction systems. By taking into account these different contributions, we are able to establish the relation between the extraction and general complexation at any pH in the system. This further allowed us to rationalize the well-defined optimum in the extraction engineering design. Calculations show that there are multiple extraction regimes even in the case of lanthanide/acid system only. Each of these regimes is controlled by the formation of different species in the solvent phase, ranging from multiple metal cation-filled aggregates (at the low acid concentrations in the aqueous phase), to the pure acid-filled aggregates (at the high acid concentrations in the aqueous phase). These results are contrary to a long-standing opinion that liquid–liquid extraction can be modeled with only a few species. Therefore, a traditional multiple equilibria approach is abandoned in favor of polydisperse spherical aggregate formations, which are in dynamic equilibrium.
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spelling pubmed-64881882019-04-30 Colloidal Model for the Prediction of the Extraction of Rare Earths Assisted by the Acidic Extractant Špadina, Mario Bohinc, Klemen Zemb, Thomas Dufrêche, Jean-François Langmuir [Image: see text] We propose the statistical thermodynamic model for the prediction of the liquid–liquid extraction efficiency in the case of rare-earth metal cations using the common bis(2-ethyl-hexyl)phosphoric acid (HDEHP) extractant. In this soft matter-based approach, the solutes are modeled as colloids. The leading terms in free-energy representation account for: the complexation, the formation of a highly curved extractant film, lateral interactions between the different extractant head groups in the film, configurational entropy of ions and water molecules, the dimerization, and the acidity of the HDEHP extractant. We provided a full framework for the multicomponent study of extraction systems. By taking into account these different contributions, we are able to establish the relation between the extraction and general complexation at any pH in the system. This further allowed us to rationalize the well-defined optimum in the extraction engineering design. Calculations show that there are multiple extraction regimes even in the case of lanthanide/acid system only. Each of these regimes is controlled by the formation of different species in the solvent phase, ranging from multiple metal cation-filled aggregates (at the low acid concentrations in the aqueous phase), to the pure acid-filled aggregates (at the high acid concentrations in the aqueous phase). These results are contrary to a long-standing opinion that liquid–liquid extraction can be modeled with only a few species. Therefore, a traditional multiple equilibria approach is abandoned in favor of polydisperse spherical aggregate formations, which are in dynamic equilibrium. American Chemical Society 2019-01-23 2019-02-26 /pmc/articles/PMC6488188/ /pubmed/30673246 http://dx.doi.org/10.1021/acs.langmuir.8b03846 Text en Copyright © 2019 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Špadina, Mario
Bohinc, Klemen
Zemb, Thomas
Dufrêche, Jean-François
Colloidal Model for the Prediction of the Extraction of Rare Earths Assisted by the Acidic Extractant
title Colloidal Model for the Prediction of the Extraction of Rare Earths Assisted by the Acidic Extractant
title_full Colloidal Model for the Prediction of the Extraction of Rare Earths Assisted by the Acidic Extractant
title_fullStr Colloidal Model for the Prediction of the Extraction of Rare Earths Assisted by the Acidic Extractant
title_full_unstemmed Colloidal Model for the Prediction of the Extraction of Rare Earths Assisted by the Acidic Extractant
title_short Colloidal Model for the Prediction of the Extraction of Rare Earths Assisted by the Acidic Extractant
title_sort colloidal model for the prediction of the extraction of rare earths assisted by the acidic extractant
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6488188/
https://www.ncbi.nlm.nih.gov/pubmed/30673246
http://dx.doi.org/10.1021/acs.langmuir.8b03846
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