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HAA by the first {Mn(iii)OH} complex with all O-donor ligands

There is considerable interest in MnOH(x) moieties, particularly in the stepwise changes in those O–H bonds in tandem with Mn oxidation state changes. The reactivity of aquo-derived ligands, {MOH(x)}, is also heavily influenced by the electronic character of the other ligands. Despite the prevalence...

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Autores principales: Moore, Shawn M., Sun, Chen, Steele, Jennifer L., Laaker, Ellen M., Rheingold, Arnold L., Doerrer, Linda H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10395311/
https://www.ncbi.nlm.nih.gov/pubmed/37538819
http://dx.doi.org/10.1039/d3sc01971c
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author Moore, Shawn M.
Sun, Chen
Steele, Jennifer L.
Laaker, Ellen M.
Rheingold, Arnold L.
Doerrer, Linda H.
author_facet Moore, Shawn M.
Sun, Chen
Steele, Jennifer L.
Laaker, Ellen M.
Rheingold, Arnold L.
Doerrer, Linda H.
author_sort Moore, Shawn M.
collection PubMed
description There is considerable interest in MnOH(x) moieties, particularly in the stepwise changes in those O–H bonds in tandem with Mn oxidation state changes. The reactivity of aquo-derived ligands, {MOH(x)}, is also heavily influenced by the electronic character of the other ligands. Despite the prevalence of oxygen coordination in biological systems, preparation of mononuclear Mn complexes of this type with all O-donors is rare. Herein, we report several Mn complexes with perfluoropinacolate (pin(F))(2−) including the first example of a crystallographically characterized mononuclear {Mn(iii)OH} with all O-donors, K(2)[Mn(OH)(pin(F))(2)], 3. Complex 3 is prepared via deprotonation of K[Mn(OH(2))(pin(F))(2)], 1, the pK(a) of which is estimated to be 18.3 ± 0.3. Cyclic voltammetry reveals quasi-reversible redox behavior for both 1 and 3 with an unusually large ΔE(p), assigned to the Mn(iii/ii) couple. Using the Bordwell method, the bond dissociation free energy (BDFE) of the O–H bond in {Mn(ii)–OH(2)} is estimated to be 67–70 kcal mol(−1). Complex 3 abstracts H-atoms from 1,2-diphenylhydrazine, 2,4,6-TTBP, and TEMPOH, the latter of which supports a PCET mechanism. Under basic conditions in air, the synthesis of 1 results in K(2)[Mn(OAc)(pin(F))(2)], 2, proposed to result from the oxidation of Et(2)O to EtOAc by a reactive Mn species, followed by ester hydrolysis. Complex 3 alone does not react with Et(2)O, but addition of O(2) at low temperature effects the formation of a new chromophore proposed to be a Mn(iv) species. The related complexes K(18C6)[Mn(iii)(pin(F))(2)], 4, and (Me(4)N)(2)[Mn(ii)(pin(F))(2)], 5, have also been prepared and their properties discussed in relation to complexes 1–3.
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spelling pubmed-103953112023-08-03 HAA by the first {Mn(iii)OH} complex with all O-donor ligands Moore, Shawn M. Sun, Chen Steele, Jennifer L. Laaker, Ellen M. Rheingold, Arnold L. Doerrer, Linda H. Chem Sci Chemistry There is considerable interest in MnOH(x) moieties, particularly in the stepwise changes in those O–H bonds in tandem with Mn oxidation state changes. The reactivity of aquo-derived ligands, {MOH(x)}, is also heavily influenced by the electronic character of the other ligands. Despite the prevalence of oxygen coordination in biological systems, preparation of mononuclear Mn complexes of this type with all O-donors is rare. Herein, we report several Mn complexes with perfluoropinacolate (pin(F))(2−) including the first example of a crystallographically characterized mononuclear {Mn(iii)OH} with all O-donors, K(2)[Mn(OH)(pin(F))(2)], 3. Complex 3 is prepared via deprotonation of K[Mn(OH(2))(pin(F))(2)], 1, the pK(a) of which is estimated to be 18.3 ± 0.3. Cyclic voltammetry reveals quasi-reversible redox behavior for both 1 and 3 with an unusually large ΔE(p), assigned to the Mn(iii/ii) couple. Using the Bordwell method, the bond dissociation free energy (BDFE) of the O–H bond in {Mn(ii)–OH(2)} is estimated to be 67–70 kcal mol(−1). Complex 3 abstracts H-atoms from 1,2-diphenylhydrazine, 2,4,6-TTBP, and TEMPOH, the latter of which supports a PCET mechanism. Under basic conditions in air, the synthesis of 1 results in K(2)[Mn(OAc)(pin(F))(2)], 2, proposed to result from the oxidation of Et(2)O to EtOAc by a reactive Mn species, followed by ester hydrolysis. Complex 3 alone does not react with Et(2)O, but addition of O(2) at low temperature effects the formation of a new chromophore proposed to be a Mn(iv) species. The related complexes K(18C6)[Mn(iii)(pin(F))(2)], 4, and (Me(4)N)(2)[Mn(ii)(pin(F))(2)], 5, have also been prepared and their properties discussed in relation to complexes 1–3. The Royal Society of Chemistry 2023-07-12 /pmc/articles/PMC10395311/ /pubmed/37538819 http://dx.doi.org/10.1039/d3sc01971c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Moore, Shawn M.
Sun, Chen
Steele, Jennifer L.
Laaker, Ellen M.
Rheingold, Arnold L.
Doerrer, Linda H.
HAA by the first {Mn(iii)OH} complex with all O-donor ligands
title HAA by the first {Mn(iii)OH} complex with all O-donor ligands
title_full HAA by the first {Mn(iii)OH} complex with all O-donor ligands
title_fullStr HAA by the first {Mn(iii)OH} complex with all O-donor ligands
title_full_unstemmed HAA by the first {Mn(iii)OH} complex with all O-donor ligands
title_short HAA by the first {Mn(iii)OH} complex with all O-donor ligands
title_sort haa by the first {mn(iii)oh} complex with all o-donor ligands
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10395311/
https://www.ncbi.nlm.nih.gov/pubmed/37538819
http://dx.doi.org/10.1039/d3sc01971c
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