Cargando…

Tantalum, easy as Pi: understanding differences in metal–imido bonding towards improving Ta/Nb separations

The separation and purification of niobium and tantalum, which co-occur in natural sources, is difficult due to their similar physical and chemical properties. The current industrial method for separating Ta/Nb mixtures uses an energy-intensive process with caustic and toxic conditions. It is of int...

Descripción completa

Detalles Bibliográficos
Autores principales: Weberg, Alexander B., Chaudhuri, Subhajyoti, Cheisson, Thibault, Uruburo, Christian, Lapsheva, Ekaterina, Pandey, Pragati, Gau, Michael R., Carroll, Patrick J., Schatz, George C., Schelter, Eric J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9200122/
https://www.ncbi.nlm.nih.gov/pubmed/35774165
http://dx.doi.org/10.1039/d2sc01926d
_version_ 1784727995059011584
author Weberg, Alexander B.
Chaudhuri, Subhajyoti
Cheisson, Thibault
Uruburo, Christian
Lapsheva, Ekaterina
Pandey, Pragati
Gau, Michael R.
Carroll, Patrick J.
Schatz, George C.
Schelter, Eric J.
author_facet Weberg, Alexander B.
Chaudhuri, Subhajyoti
Cheisson, Thibault
Uruburo, Christian
Lapsheva, Ekaterina
Pandey, Pragati
Gau, Michael R.
Carroll, Patrick J.
Schatz, George C.
Schelter, Eric J.
author_sort Weberg, Alexander B.
collection PubMed
description The separation and purification of niobium and tantalum, which co-occur in natural sources, is difficult due to their similar physical and chemical properties. The current industrial method for separating Ta/Nb mixtures uses an energy-intensive process with caustic and toxic conditions. It is of interest to develop alternative, fundamental methodologies for the purification of these technologically important metals that improve upon their environmental impact. Herein, we introduce new Ta/Nb imido compounds: M((t)BuN)(TriNOx) (1-M) bound by the TriNOx(3−) ligand and demonstrate a fundamental, proof-of-concept Ta/Nb separation based on differences in the imido reactivities. Despite the nearly identical structures of 1-M, density functional theory (DFT)-computed electronic structures of 1-M indicate enhanced basic character of the imido group in 1-Ta as compared to 1-Nb. Accordingly, the rate of CO(2) insertion into the M[double bond, length as m-dash]N(imido) bond of 1-Ta to form a carbamate complex (2-Ta) was selective compared to the analogous, unobserved reaction with 1-Nb. Differences in solubility between the imido and carbamate complexes allowed for separation of the carbamate complex, and led to an efficient Ta/Nb separation (S(Ta/Nb) = 404 ± 150) dependent on the kinetic differences in nucleophilicities between the imido moieties in 1-Ta and 1-Nb.
format Online
Article
Text
id pubmed-9200122
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-92001222022-06-29 Tantalum, easy as Pi: understanding differences in metal–imido bonding towards improving Ta/Nb separations Weberg, Alexander B. Chaudhuri, Subhajyoti Cheisson, Thibault Uruburo, Christian Lapsheva, Ekaterina Pandey, Pragati Gau, Michael R. Carroll, Patrick J. Schatz, George C. Schelter, Eric J. Chem Sci Chemistry The separation and purification of niobium and tantalum, which co-occur in natural sources, is difficult due to their similar physical and chemical properties. The current industrial method for separating Ta/Nb mixtures uses an energy-intensive process with caustic and toxic conditions. It is of interest to develop alternative, fundamental methodologies for the purification of these technologically important metals that improve upon their environmental impact. Herein, we introduce new Ta/Nb imido compounds: M((t)BuN)(TriNOx) (1-M) bound by the TriNOx(3−) ligand and demonstrate a fundamental, proof-of-concept Ta/Nb separation based on differences in the imido reactivities. Despite the nearly identical structures of 1-M, density functional theory (DFT)-computed electronic structures of 1-M indicate enhanced basic character of the imido group in 1-Ta as compared to 1-Nb. Accordingly, the rate of CO(2) insertion into the M[double bond, length as m-dash]N(imido) bond of 1-Ta to form a carbamate complex (2-Ta) was selective compared to the analogous, unobserved reaction with 1-Nb. Differences in solubility between the imido and carbamate complexes allowed for separation of the carbamate complex, and led to an efficient Ta/Nb separation (S(Ta/Nb) = 404 ± 150) dependent on the kinetic differences in nucleophilicities between the imido moieties in 1-Ta and 1-Nb. The Royal Society of Chemistry 2022-05-12 /pmc/articles/PMC9200122/ /pubmed/35774165 http://dx.doi.org/10.1039/d2sc01926d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Weberg, Alexander B.
Chaudhuri, Subhajyoti
Cheisson, Thibault
Uruburo, Christian
Lapsheva, Ekaterina
Pandey, Pragati
Gau, Michael R.
Carroll, Patrick J.
Schatz, George C.
Schelter, Eric J.
Tantalum, easy as Pi: understanding differences in metal–imido bonding towards improving Ta/Nb separations
title Tantalum, easy as Pi: understanding differences in metal–imido bonding towards improving Ta/Nb separations
title_full Tantalum, easy as Pi: understanding differences in metal–imido bonding towards improving Ta/Nb separations
title_fullStr Tantalum, easy as Pi: understanding differences in metal–imido bonding towards improving Ta/Nb separations
title_full_unstemmed Tantalum, easy as Pi: understanding differences in metal–imido bonding towards improving Ta/Nb separations
title_short Tantalum, easy as Pi: understanding differences in metal–imido bonding towards improving Ta/Nb separations
title_sort tantalum, easy as pi: understanding differences in metal–imido bonding towards improving ta/nb separations
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9200122/
https://www.ncbi.nlm.nih.gov/pubmed/35774165
http://dx.doi.org/10.1039/d2sc01926d
work_keys_str_mv AT webergalexanderb tantalumeasyaspiunderstandingdifferencesinmetalimidobondingtowardsimprovingtanbseparations
AT chaudhurisubhajyoti tantalumeasyaspiunderstandingdifferencesinmetalimidobondingtowardsimprovingtanbseparations
AT cheissonthibault tantalumeasyaspiunderstandingdifferencesinmetalimidobondingtowardsimprovingtanbseparations
AT uruburochristian tantalumeasyaspiunderstandingdifferencesinmetalimidobondingtowardsimprovingtanbseparations
AT lapshevaekaterina tantalumeasyaspiunderstandingdifferencesinmetalimidobondingtowardsimprovingtanbseparations
AT pandeypragati tantalumeasyaspiunderstandingdifferencesinmetalimidobondingtowardsimprovingtanbseparations
AT gaumichaelr tantalumeasyaspiunderstandingdifferencesinmetalimidobondingtowardsimprovingtanbseparations
AT carrollpatrickj tantalumeasyaspiunderstandingdifferencesinmetalimidobondingtowardsimprovingtanbseparations
AT schatzgeorgec tantalumeasyaspiunderstandingdifferencesinmetalimidobondingtowardsimprovingtanbseparations
AT schelterericj tantalumeasyaspiunderstandingdifferencesinmetalimidobondingtowardsimprovingtanbseparations