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Halogenation and Nucleophilic Quenching: Two Routes to E−X Bond Formation in Cobalt Triple‐Decker Complexes (E=As, P; X=F, Cl, Br, I)

The oxidation of [(Cp’’’Co)(2)(μ,η(2) : η(2)‐E(2))(2)] (E=As (1), P (2); Cp’’’=1,2,4‐tri(tert‐butyl)cyclopentadienyl) with halogens or halogen sources (I(2), PBr(5), PCl(5)) was investigated. For the arsenic derivative, the ionic compounds [(Cp’’’Co)(2)(μ,η(4) : η(4)−As(4)X)][Y] (X=I, Y=[As(6)I(8)](...

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Autores principales: Garbagnati, Anna, Piesch, Martin, Seidl, Michael, Balázs, Gábor, Scheer, Manfred
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9400891/
https://www.ncbi.nlm.nih.gov/pubmed/35575044
http://dx.doi.org/10.1002/chem.202201026
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author Garbagnati, Anna
Piesch, Martin
Seidl, Michael
Balázs, Gábor
Scheer, Manfred
author_facet Garbagnati, Anna
Piesch, Martin
Seidl, Michael
Balázs, Gábor
Scheer, Manfred
author_sort Garbagnati, Anna
collection PubMed
description The oxidation of [(Cp’’’Co)(2)(μ,η(2) : η(2)‐E(2))(2)] (E=As (1), P (2); Cp’’’=1,2,4‐tri(tert‐butyl)cyclopentadienyl) with halogens or halogen sources (I(2), PBr(5), PCl(5)) was investigated. For the arsenic derivative, the ionic compounds [(Cp’’’Co)(2)(μ,η(4) : η(4)−As(4)X)][Y] (X=I, Y=[As(6)I(8)](0.5) (3 a), Y=[Co(2)Cl(6‐n )I( n )](0.5) (n=0, 2, 4; 3 b); X=Br, Y=[Co(2)Br(6)](0.5) (4); X=Cl, Y=[Co(2)Cl(6)](0.5) (5)) were isolated. The oxidation of the phosphorus analogue 2 with bromine and chlorine sources yielded the ionic complexes [(Cp’’’Co)(2)(μ‐PBr(2))(2)(μ‐Br)][Co(2)Br(6)](0.5) (6 a), [(Cp’’’Co)(2)(μ‐PCl(2))(2)(μ‐Cl)][Co(2)Cl(6)](0.5) (6 b) and the neutral species [(Cp’’’Co)(2)(μ‐PCl(2))(μ‐PCl)(μ,η(1) : η(1)‐P(2)Cl(3)] (7), respectively. As an alternative approach, quenching of the dications [(Cp’’’Co)(2)(μ,η(4) : η(4)‐E(4))][TEF](2) (TEF=[Al{OC(CF(3))(3)}(4)](−), E=As (8), P (9)) with KI yielded [(Cp’’’Co)(2)(μ,η(4) : η(4)‐As(4)I)][I] (10), representing the homologue of 3, and the neutral complex [(Cp’’’Co)(Cp’’’CoI(2))(μ,η(4) : η(1)‐P(4))] (11), respectively. The use of [(CH(3))(4)N]F instead of KI leads to the formation of [(Cp’’’Co)(2)(μ‐PF(2))(μ,η(2) : η(1) : η(1)‐P(3)F(2))] (12) and 2, thereby revealing synthetic access to polyphosphorus compounds bearing P−F groups and avoiding the use of very strong fluorinating reagents, such as XeF(2), that are difficult to control.
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spelling pubmed-94008912022-08-26 Halogenation and Nucleophilic Quenching: Two Routes to E−X Bond Formation in Cobalt Triple‐Decker Complexes (E=As, P; X=F, Cl, Br, I) Garbagnati, Anna Piesch, Martin Seidl, Michael Balázs, Gábor Scheer, Manfred Chemistry Research Articles The oxidation of [(Cp’’’Co)(2)(μ,η(2) : η(2)‐E(2))(2)] (E=As (1), P (2); Cp’’’=1,2,4‐tri(tert‐butyl)cyclopentadienyl) with halogens or halogen sources (I(2), PBr(5), PCl(5)) was investigated. For the arsenic derivative, the ionic compounds [(Cp’’’Co)(2)(μ,η(4) : η(4)−As(4)X)][Y] (X=I, Y=[As(6)I(8)](0.5) (3 a), Y=[Co(2)Cl(6‐n )I( n )](0.5) (n=0, 2, 4; 3 b); X=Br, Y=[Co(2)Br(6)](0.5) (4); X=Cl, Y=[Co(2)Cl(6)](0.5) (5)) were isolated. The oxidation of the phosphorus analogue 2 with bromine and chlorine sources yielded the ionic complexes [(Cp’’’Co)(2)(μ‐PBr(2))(2)(μ‐Br)][Co(2)Br(6)](0.5) (6 a), [(Cp’’’Co)(2)(μ‐PCl(2))(2)(μ‐Cl)][Co(2)Cl(6)](0.5) (6 b) and the neutral species [(Cp’’’Co)(2)(μ‐PCl(2))(μ‐PCl)(μ,η(1) : η(1)‐P(2)Cl(3)] (7), respectively. As an alternative approach, quenching of the dications [(Cp’’’Co)(2)(μ,η(4) : η(4)‐E(4))][TEF](2) (TEF=[Al{OC(CF(3))(3)}(4)](−), E=As (8), P (9)) with KI yielded [(Cp’’’Co)(2)(μ,η(4) : η(4)‐As(4)I)][I] (10), representing the homologue of 3, and the neutral complex [(Cp’’’Co)(Cp’’’CoI(2))(μ,η(4) : η(1)‐P(4))] (11), respectively. The use of [(CH(3))(4)N]F instead of KI leads to the formation of [(Cp’’’Co)(2)(μ‐PF(2))(μ,η(2) : η(1) : η(1)‐P(3)F(2))] (12) and 2, thereby revealing synthetic access to polyphosphorus compounds bearing P−F groups and avoiding the use of very strong fluorinating reagents, such as XeF(2), that are difficult to control. John Wiley and Sons Inc. 2022-06-14 2022-08-01 /pmc/articles/PMC9400891/ /pubmed/35575044 http://dx.doi.org/10.1002/chem.202201026 Text en © 2022 The Authors. Chemistry - A European Journal published by Wiley-VCH GmbH https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Research Articles
Garbagnati, Anna
Piesch, Martin
Seidl, Michael
Balázs, Gábor
Scheer, Manfred
Halogenation and Nucleophilic Quenching: Two Routes to E−X Bond Formation in Cobalt Triple‐Decker Complexes (E=As, P; X=F, Cl, Br, I)
title Halogenation and Nucleophilic Quenching: Two Routes to E−X Bond Formation in Cobalt Triple‐Decker Complexes (E=As, P; X=F, Cl, Br, I)
title_full Halogenation and Nucleophilic Quenching: Two Routes to E−X Bond Formation in Cobalt Triple‐Decker Complexes (E=As, P; X=F, Cl, Br, I)
title_fullStr Halogenation and Nucleophilic Quenching: Two Routes to E−X Bond Formation in Cobalt Triple‐Decker Complexes (E=As, P; X=F, Cl, Br, I)
title_full_unstemmed Halogenation and Nucleophilic Quenching: Two Routes to E−X Bond Formation in Cobalt Triple‐Decker Complexes (E=As, P; X=F, Cl, Br, I)
title_short Halogenation and Nucleophilic Quenching: Two Routes to E−X Bond Formation in Cobalt Triple‐Decker Complexes (E=As, P; X=F, Cl, Br, I)
title_sort halogenation and nucleophilic quenching: two routes to e−x bond formation in cobalt triple‐decker complexes (e=as, p; x=f, cl, br, i)
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9400891/
https://www.ncbi.nlm.nih.gov/pubmed/35575044
http://dx.doi.org/10.1002/chem.202201026
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