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Electronic Consequences of Ligand Substitution at Heterometal Centers in Polyoxovanadium Clusters: Controlling the Redox Properties through Heterometal Coordination Number

The rational control of the electrochemical properties of polyoxovanadate‐alkoxide clusters is dependent on understanding the influence of various synthetic modifications on the overall redox processes of these systems. In this work, the electronic consequences of ligand substitution at the heteroio...

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Autores principales: Meyer, Rachel L., Anjass, Montaha H., Petel, Brittney E., Brennessel, William W., Streb, Carsten, Matson, Ellen M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7496301/
https://www.ncbi.nlm.nih.gov/pubmed/32196127
http://dx.doi.org/10.1002/chem.201905624
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author Meyer, Rachel L.
Anjass, Montaha H.
Petel, Brittney E.
Brennessel, William W.
Streb, Carsten
Matson, Ellen M.
author_facet Meyer, Rachel L.
Anjass, Montaha H.
Petel, Brittney E.
Brennessel, William W.
Streb, Carsten
Matson, Ellen M.
author_sort Meyer, Rachel L.
collection PubMed
description The rational control of the electrochemical properties of polyoxovanadate‐alkoxide clusters is dependent on understanding the influence of various synthetic modifications on the overall redox processes of these systems. In this work, the electronic consequences of ligand substitution at the heteroion in a heterometal‐functionalized cluster was examined. The redox properties of [V(5)O(6)(OCH(3))(12)FeCl] (1‐[V(5)FeCl]) and [V(5)O(6)(OCH(3))(12)Fe]X (2‐[V(5)Fe]X; X=ClO(4), OTf) were compared in order to assess the effects of changing the coordination environment around the iron center on the electrochemical properties of the cluster. Coordination of a chloride anion to iron leads to an anodic shift in redox events. Theoretical modelling of the electronic structure of these heterometal‐functionalized clusters reveals that differences in the redox profiles of 1‐[V(5)FeCl] and 2‐[V(5)Fe]X arise from changes in the number of ligands surrounding the iron center (e.g., 6‐coordinate vs. 5‐coordinate). Specifically, binding of the chloride to the sixth coordination site appears to change the orbital interaction between the iron and the delocalized electronic structure of the mixed‐valent polyoxovanadate core. Tuning the heterometal coordination environment can therefore be used to modulate the redox properties of the whole cluster.
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spelling pubmed-74963012020-09-25 Electronic Consequences of Ligand Substitution at Heterometal Centers in Polyoxovanadium Clusters: Controlling the Redox Properties through Heterometal Coordination Number Meyer, Rachel L. Anjass, Montaha H. Petel, Brittney E. Brennessel, William W. Streb, Carsten Matson, Ellen M. Chemistry Full Papers The rational control of the electrochemical properties of polyoxovanadate‐alkoxide clusters is dependent on understanding the influence of various synthetic modifications on the overall redox processes of these systems. In this work, the electronic consequences of ligand substitution at the heteroion in a heterometal‐functionalized cluster was examined. The redox properties of [V(5)O(6)(OCH(3))(12)FeCl] (1‐[V(5)FeCl]) and [V(5)O(6)(OCH(3))(12)Fe]X (2‐[V(5)Fe]X; X=ClO(4), OTf) were compared in order to assess the effects of changing the coordination environment around the iron center on the electrochemical properties of the cluster. Coordination of a chloride anion to iron leads to an anodic shift in redox events. Theoretical modelling of the electronic structure of these heterometal‐functionalized clusters reveals that differences in the redox profiles of 1‐[V(5)FeCl] and 2‐[V(5)Fe]X arise from changes in the number of ligands surrounding the iron center (e.g., 6‐coordinate vs. 5‐coordinate). Specifically, binding of the chloride to the sixth coordination site appears to change the orbital interaction between the iron and the delocalized electronic structure of the mixed‐valent polyoxovanadate core. Tuning the heterometal coordination environment can therefore be used to modulate the redox properties of the whole cluster. John Wiley and Sons Inc. 2020-06-25 2020-08-06 /pmc/articles/PMC7496301/ /pubmed/32196127 http://dx.doi.org/10.1002/chem.201905624 Text en © 2020 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Meyer, Rachel L.
Anjass, Montaha H.
Petel, Brittney E.
Brennessel, William W.
Streb, Carsten
Matson, Ellen M.
Electronic Consequences of Ligand Substitution at Heterometal Centers in Polyoxovanadium Clusters: Controlling the Redox Properties through Heterometal Coordination Number
title Electronic Consequences of Ligand Substitution at Heterometal Centers in Polyoxovanadium Clusters: Controlling the Redox Properties through Heterometal Coordination Number
title_full Electronic Consequences of Ligand Substitution at Heterometal Centers in Polyoxovanadium Clusters: Controlling the Redox Properties through Heterometal Coordination Number
title_fullStr Electronic Consequences of Ligand Substitution at Heterometal Centers in Polyoxovanadium Clusters: Controlling the Redox Properties through Heterometal Coordination Number
title_full_unstemmed Electronic Consequences of Ligand Substitution at Heterometal Centers in Polyoxovanadium Clusters: Controlling the Redox Properties through Heterometal Coordination Number
title_short Electronic Consequences of Ligand Substitution at Heterometal Centers in Polyoxovanadium Clusters: Controlling the Redox Properties through Heterometal Coordination Number
title_sort electronic consequences of ligand substitution at heterometal centers in polyoxovanadium clusters: controlling the redox properties through heterometal coordination number
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7496301/
https://www.ncbi.nlm.nih.gov/pubmed/32196127
http://dx.doi.org/10.1002/chem.201905624
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