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A 10(6)-Fold Enhancement in N(2)-Binding Affinity of an Fe(2)(μ-H)(2) Core upon Reduction to a Mixed-Valence Fe(II)Fe(I) State

[Image: see text] Transient hydride ligands bridging two or more iron centers purportedly accumulate on the iron–molybdenum cofactor (FeMoco) of nitrogenase, and their role in the reduction of N(2) to NH(3) is unknown. One role of these ligands may be to facilitate N(2) coordination at an iron site...

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Autores principales: Rittle, Jonathan, McCrory, Charles C. L., Peters, Jonas C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4183624/
https://www.ncbi.nlm.nih.gov/pubmed/25184795
http://dx.doi.org/10.1021/ja507217v
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author Rittle, Jonathan
McCrory, Charles C. L.
Peters, Jonas C.
author_facet Rittle, Jonathan
McCrory, Charles C. L.
Peters, Jonas C.
author_sort Rittle, Jonathan
collection PubMed
description [Image: see text] Transient hydride ligands bridging two or more iron centers purportedly accumulate on the iron–molybdenum cofactor (FeMoco) of nitrogenase, and their role in the reduction of N(2) to NH(3) is unknown. One role of these ligands may be to facilitate N(2) coordination at an iron site of FeMoco. Herein, we consider this hypothesis and describe the preparation of a series of diiron complexes supported by two bridging hydride ligands. These compounds bind either one or two molecules of N(2) depending on the redox state of the Fe(2)(μ-H)(2) unit. An unusual example of a mixed-valent Fe(II)(μ-H)(2)Fe(I) is described that displays a 10(6)-fold enhancement of N(2) binding affinity over its oxidized congener, quantified by spectroscopic and electrochemical techniques. Furthermore, these compounds show promise as functional models of nitrogenase as substantial amounts of NH(3) are produced upon exposure to proton and electron equivalents. The Fe(μ-H)Fe(N(2)) sub-structure featured herein was previously unknown. This subunit may be relevant to consider in nitrogenases during turnover.
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spelling pubmed-41836242015-09-03 A 10(6)-Fold Enhancement in N(2)-Binding Affinity of an Fe(2)(μ-H)(2) Core upon Reduction to a Mixed-Valence Fe(II)Fe(I) State Rittle, Jonathan McCrory, Charles C. L. Peters, Jonas C. J Am Chem Soc [Image: see text] Transient hydride ligands bridging two or more iron centers purportedly accumulate on the iron–molybdenum cofactor (FeMoco) of nitrogenase, and their role in the reduction of N(2) to NH(3) is unknown. One role of these ligands may be to facilitate N(2) coordination at an iron site of FeMoco. Herein, we consider this hypothesis and describe the preparation of a series of diiron complexes supported by two bridging hydride ligands. These compounds bind either one or two molecules of N(2) depending on the redox state of the Fe(2)(μ-H)(2) unit. An unusual example of a mixed-valent Fe(II)(μ-H)(2)Fe(I) is described that displays a 10(6)-fold enhancement of N(2) binding affinity over its oxidized congener, quantified by spectroscopic and electrochemical techniques. Furthermore, these compounds show promise as functional models of nitrogenase as substantial amounts of NH(3) are produced upon exposure to proton and electron equivalents. The Fe(μ-H)Fe(N(2)) sub-structure featured herein was previously unknown. This subunit may be relevant to consider in nitrogenases during turnover. American Chemical Society 2014-09-03 2014-10-01 /pmc/articles/PMC4183624/ /pubmed/25184795 http://dx.doi.org/10.1021/ja507217v Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Rittle, Jonathan
McCrory, Charles C. L.
Peters, Jonas C.
A 10(6)-Fold Enhancement in N(2)-Binding Affinity of an Fe(2)(μ-H)(2) Core upon Reduction to a Mixed-Valence Fe(II)Fe(I) State
title A 10(6)-Fold Enhancement in N(2)-Binding Affinity of an Fe(2)(μ-H)(2) Core upon Reduction to a Mixed-Valence Fe(II)Fe(I) State
title_full A 10(6)-Fold Enhancement in N(2)-Binding Affinity of an Fe(2)(μ-H)(2) Core upon Reduction to a Mixed-Valence Fe(II)Fe(I) State
title_fullStr A 10(6)-Fold Enhancement in N(2)-Binding Affinity of an Fe(2)(μ-H)(2) Core upon Reduction to a Mixed-Valence Fe(II)Fe(I) State
title_full_unstemmed A 10(6)-Fold Enhancement in N(2)-Binding Affinity of an Fe(2)(μ-H)(2) Core upon Reduction to a Mixed-Valence Fe(II)Fe(I) State
title_short A 10(6)-Fold Enhancement in N(2)-Binding Affinity of an Fe(2)(μ-H)(2) Core upon Reduction to a Mixed-Valence Fe(II)Fe(I) State
title_sort 10(6)-fold enhancement in n(2)-binding affinity of an fe(2)(μ-h)(2) core upon reduction to a mixed-valence fe(ii)fe(i) state
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4183624/
https://www.ncbi.nlm.nih.gov/pubmed/25184795
http://dx.doi.org/10.1021/ja507217v
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