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Using coligands to gain mechanistic insight into iridium complexes hyperpolarized with para-hydrogen

We report the formation of a series of novel [Ir(H)(2)(IMes)(α-(13)C(2)-carboxyimine)L] complexes in which the identity of the coligand L is varied. When examined with para-hydrogen, complexes in which L is benzylamine or phenethylamine show significant (1)H hydride and (13)C(2) imine enhancements a...

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Autores principales: Tickner, Ben. J., John, Richard O., Roy, Soumya S., Hart, Sam J., Whitwood, Adrian C., Duckett, Simon B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6540910/
https://www.ncbi.nlm.nih.gov/pubmed/31191878
http://dx.doi.org/10.1039/c9sc00444k
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author Tickner, Ben. J.
John, Richard O.
Roy, Soumya S.
Hart, Sam J.
Whitwood, Adrian C.
Duckett, Simon B.
author_facet Tickner, Ben. J.
John, Richard O.
Roy, Soumya S.
Hart, Sam J.
Whitwood, Adrian C.
Duckett, Simon B.
author_sort Tickner, Ben. J.
collection PubMed
description We report the formation of a series of novel [Ir(H)(2)(IMes)(α-(13)C(2)-carboxyimine)L] complexes in which the identity of the coligand L is varied. When examined with para-hydrogen, complexes in which L is benzylamine or phenethylamine show significant (1)H hydride and (13)C(2) imine enhancements and may exist in (13)C(2) singlet spin order. Isotopic labeling techniques are used to double (13)C(2) enhancements (up to 750-fold) and singlet state lifetimes (up to 20 seconds) compared to those previously reported. Exchange spectroscopy and Density Functional Theory are used to investigate the stability and mechanism of rapid hydrogen exchange in these complexes, a process driven by dissociative coligand loss to form a key five coordinate intermediate. When L is pyridine or imidazole, competitive binding to such intermediates leads to novel complexes whose formation, kinetics, behaviour, structure, and hyperpolarization is investigated. The ratio of the observed PHIP enhancements were found to be affected not only by the hydrogen exchange rates but the identity of the coligands. This ligand reactivity is accompanied by decoherence of any (13)C(2) singlet order which can be preserved by isotopic labeling. Addition of a thiol coligand proved to yield a thiol oxidative addition product which is characterized by NMR and MS techniques. Significant 870-fold (13)C enhancements of pyridine can be achieved using the Signal Amplification By Reversible Exchange (SABRE) process when α-carboxyimines are used to block active coordination sites. [Ir(H)(2)(IMes)(α-(13)C(2)-carboxyimine)L] therefore acts as unique sensors whose (1)H hydride chemical shifts and corresponding hyperpolarization levels are indicative of the identity of a coligand and its binding strength.
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spelling pubmed-65409102019-06-12 Using coligands to gain mechanistic insight into iridium complexes hyperpolarized with para-hydrogen Tickner, Ben. J. John, Richard O. Roy, Soumya S. Hart, Sam J. Whitwood, Adrian C. Duckett, Simon B. Chem Sci Chemistry We report the formation of a series of novel [Ir(H)(2)(IMes)(α-(13)C(2)-carboxyimine)L] complexes in which the identity of the coligand L is varied. When examined with para-hydrogen, complexes in which L is benzylamine or phenethylamine show significant (1)H hydride and (13)C(2) imine enhancements and may exist in (13)C(2) singlet spin order. Isotopic labeling techniques are used to double (13)C(2) enhancements (up to 750-fold) and singlet state lifetimes (up to 20 seconds) compared to those previously reported. Exchange spectroscopy and Density Functional Theory are used to investigate the stability and mechanism of rapid hydrogen exchange in these complexes, a process driven by dissociative coligand loss to form a key five coordinate intermediate. When L is pyridine or imidazole, competitive binding to such intermediates leads to novel complexes whose formation, kinetics, behaviour, structure, and hyperpolarization is investigated. The ratio of the observed PHIP enhancements were found to be affected not only by the hydrogen exchange rates but the identity of the coligands. This ligand reactivity is accompanied by decoherence of any (13)C(2) singlet order which can be preserved by isotopic labeling. Addition of a thiol coligand proved to yield a thiol oxidative addition product which is characterized by NMR and MS techniques. Significant 870-fold (13)C enhancements of pyridine can be achieved using the Signal Amplification By Reversible Exchange (SABRE) process when α-carboxyimines are used to block active coordination sites. [Ir(H)(2)(IMes)(α-(13)C(2)-carboxyimine)L] therefore acts as unique sensors whose (1)H hydride chemical shifts and corresponding hyperpolarization levels are indicative of the identity of a coligand and its binding strength. Royal Society of Chemistry 2019-03-19 /pmc/articles/PMC6540910/ /pubmed/31191878 http://dx.doi.org/10.1039/c9sc00444k Text en This journal is © The Royal Society of Chemistry 2019 http://creativecommons.org/licenses/by/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Tickner, Ben. J.
John, Richard O.
Roy, Soumya S.
Hart, Sam J.
Whitwood, Adrian C.
Duckett, Simon B.
Using coligands to gain mechanistic insight into iridium complexes hyperpolarized with para-hydrogen
title Using coligands to gain mechanistic insight into iridium complexes hyperpolarized with para-hydrogen
title_full Using coligands to gain mechanistic insight into iridium complexes hyperpolarized with para-hydrogen
title_fullStr Using coligands to gain mechanistic insight into iridium complexes hyperpolarized with para-hydrogen
title_full_unstemmed Using coligands to gain mechanistic insight into iridium complexes hyperpolarized with para-hydrogen
title_short Using coligands to gain mechanistic insight into iridium complexes hyperpolarized with para-hydrogen
title_sort using coligands to gain mechanistic insight into iridium complexes hyperpolarized with para-hydrogen
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6540910/
https://www.ncbi.nlm.nih.gov/pubmed/31191878
http://dx.doi.org/10.1039/c9sc00444k
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