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Inner-sphere vs. outer-sphere reduction of uranyl supported by a redox-active, donor-expanded dipyrrin

The uranyl(vi) complex UO(2)Cl(L) of the redox-active, acyclic diimino-dipyrrin anion, L(–) is reported and its reaction with inner- and outer-sphere reductants studied. Voltammetric, EPR-spectroscopic and X-ray crystallographic studies show that chemical reduction by the outer-sphere reagent CoCp(2...

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Autores principales: Pankhurst, James R., Bell, Nicola L., Zegke, Markus, Platts, Lucy N., Lamfsus, Carlos Alvarez, Maron, Laurent, Natrajan, Louise S., Sproules, Stephen, Arnold, Polly L., Love, Jason B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5304617/
https://www.ncbi.nlm.nih.gov/pubmed/28451154
http://dx.doi.org/10.1039/c6sc02912d
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author Pankhurst, James R.
Bell, Nicola L.
Zegke, Markus
Platts, Lucy N.
Lamfsus, Carlos Alvarez
Maron, Laurent
Natrajan, Louise S.
Sproules, Stephen
Arnold, Polly L.
Love, Jason B.
author_facet Pankhurst, James R.
Bell, Nicola L.
Zegke, Markus
Platts, Lucy N.
Lamfsus, Carlos Alvarez
Maron, Laurent
Natrajan, Louise S.
Sproules, Stephen
Arnold, Polly L.
Love, Jason B.
author_sort Pankhurst, James R.
collection PubMed
description The uranyl(vi) complex UO(2)Cl(L) of the redox-active, acyclic diimino-dipyrrin anion, L(–) is reported and its reaction with inner- and outer-sphere reductants studied. Voltammetric, EPR-spectroscopic and X-ray crystallographic studies show that chemical reduction by the outer-sphere reagent CoCp(2) initially reduces the ligand to a dipyrrin radical, and imply that a second equivalent of CoCp(2) reduces the U(vi) centre to form U(v). Cyclic voltammetry indicates that further outer-sphere reduction to form the putative U(iv) trianion only occurs at strongly cathodic potentials. The initial reduction of the dipyrrin ligand is supported by emission spectra, X-ray crystallography, and DFT; the latter also shows that these outer-sphere reactions are exergonic and proceed through sequential, one-electron steps. Reduction by the inner-sphere reductant [TiCp(2)Cl](2) is also likely to result in ligand reduction in the first instance but, in contrast to the outer-sphere case, reduction of the uranium centre becomes much more favoured, allowing the formation of a crystallographically characterised, doubly-titanated U(iv) complex. In the case of inner-sphere reduction only, ligand-to-metal electron-transfer is thermodynamically driven by coordination of Lewis-acidic Ti(iv) to the uranyl oxo, and is energetically preferable over the disproportionation of U(v). Overall, the involvement of the redox-active dipyrrin ligand in the reduction chemistry of UO(2)Cl(L) is inherent to both inner- and outer-sphere reduction mechanisms, providing a new route to accessing a variety of U(vi), U(v), and U(iv) complexes.
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spelling pubmed-53046172017-04-27 Inner-sphere vs. outer-sphere reduction of uranyl supported by a redox-active, donor-expanded dipyrrin Pankhurst, James R. Bell, Nicola L. Zegke, Markus Platts, Lucy N. Lamfsus, Carlos Alvarez Maron, Laurent Natrajan, Louise S. Sproules, Stephen Arnold, Polly L. Love, Jason B. Chem Sci Chemistry The uranyl(vi) complex UO(2)Cl(L) of the redox-active, acyclic diimino-dipyrrin anion, L(–) is reported and its reaction with inner- and outer-sphere reductants studied. Voltammetric, EPR-spectroscopic and X-ray crystallographic studies show that chemical reduction by the outer-sphere reagent CoCp(2) initially reduces the ligand to a dipyrrin radical, and imply that a second equivalent of CoCp(2) reduces the U(vi) centre to form U(v). Cyclic voltammetry indicates that further outer-sphere reduction to form the putative U(iv) trianion only occurs at strongly cathodic potentials. The initial reduction of the dipyrrin ligand is supported by emission spectra, X-ray crystallography, and DFT; the latter also shows that these outer-sphere reactions are exergonic and proceed through sequential, one-electron steps. Reduction by the inner-sphere reductant [TiCp(2)Cl](2) is also likely to result in ligand reduction in the first instance but, in contrast to the outer-sphere case, reduction of the uranium centre becomes much more favoured, allowing the formation of a crystallographically characterised, doubly-titanated U(iv) complex. In the case of inner-sphere reduction only, ligand-to-metal electron-transfer is thermodynamically driven by coordination of Lewis-acidic Ti(iv) to the uranyl oxo, and is energetically preferable over the disproportionation of U(v). Overall, the involvement of the redox-active dipyrrin ligand in the reduction chemistry of UO(2)Cl(L) is inherent to both inner- and outer-sphere reduction mechanisms, providing a new route to accessing a variety of U(vi), U(v), and U(iv) complexes. Royal Society of Chemistry 2017-01-01 2016-10-28 /pmc/articles/PMC5304617/ /pubmed/28451154 http://dx.doi.org/10.1039/c6sc02912d Text en This journal is © The Royal Society of Chemistry 2016 http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemistry
Pankhurst, James R.
Bell, Nicola L.
Zegke, Markus
Platts, Lucy N.
Lamfsus, Carlos Alvarez
Maron, Laurent
Natrajan, Louise S.
Sproules, Stephen
Arnold, Polly L.
Love, Jason B.
Inner-sphere vs. outer-sphere reduction of uranyl supported by a redox-active, donor-expanded dipyrrin
title Inner-sphere vs. outer-sphere reduction of uranyl supported by a redox-active, donor-expanded dipyrrin
title_full Inner-sphere vs. outer-sphere reduction of uranyl supported by a redox-active, donor-expanded dipyrrin
title_fullStr Inner-sphere vs. outer-sphere reduction of uranyl supported by a redox-active, donor-expanded dipyrrin
title_full_unstemmed Inner-sphere vs. outer-sphere reduction of uranyl supported by a redox-active, donor-expanded dipyrrin
title_short Inner-sphere vs. outer-sphere reduction of uranyl supported by a redox-active, donor-expanded dipyrrin
title_sort inner-sphere vs. outer-sphere reduction of uranyl supported by a redox-active, donor-expanded dipyrrin
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5304617/
https://www.ncbi.nlm.nih.gov/pubmed/28451154
http://dx.doi.org/10.1039/c6sc02912d
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