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Ambiphilic boryl groups in a neutral Ni(ii) complex: a new activation mode of H(2)

The concept of metal–ligand cooperation opens new avenues for the design of catalytic systems that may offer alternative reactivity patterns to the existing ones. Investigations of this concept with ligands bearing a boron center in their skeleton established mechanistic pathways for the activation...

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Autores principales: Ríos, Pablo, Borge, Javier, Fernández de Córdova, Francisco, Sciortino, Giuseppe, Lledós, Agustí, Rodríguez, Amor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179274/
https://www.ncbi.nlm.nih.gov/pubmed/34164022
http://dx.doi.org/10.1039/d0sc06014c
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author Ríos, Pablo
Borge, Javier
Fernández de Córdova, Francisco
Sciortino, Giuseppe
Lledós, Agustí
Rodríguez, Amor
author_facet Ríos, Pablo
Borge, Javier
Fernández de Córdova, Francisco
Sciortino, Giuseppe
Lledós, Agustí
Rodríguez, Amor
author_sort Ríos, Pablo
collection PubMed
description The concept of metal–ligand cooperation opens new avenues for the design of catalytic systems that may offer alternative reactivity patterns to the existing ones. Investigations of this concept with ligands bearing a boron center in their skeleton established mechanistic pathways for the activation of small molecules in which the boron atom usually performs as an electrophile. Here, we show how this electrophilic behavior can be modified by the ligand trans to the boron center, evincing its ambiphilic nature. Treatment of diphosphinoboryl (PBP) nickel–methyl complex 1 with bis(catecholato)diboron (B(2)Cat(2)) allows for the synthesis of nickel(ii) bis-boryl complex 3 that promotes the clean and reversible heterolytic cleavage of dihydrogen leading to the formation of dihydroborate nickel complex 4. Density functional theory analysis of this reaction revealed that the heterolytic activation of H(2) is facilitated by the cooperation of both boryl moieties and the metal atom in a concerted mechanism that involves a Ni(ii)/Ni(0)/Ni(ii) process. Contrary to 1, the boron atom from the PBP ligand in 3 behaves as a nucleophile, accepting a formally protic hydrogen, whereas the catecholboryl moiety acts as an electrophile, receiving the attack from the hydride-like fragment. This manifests the dramatic change in the electronic properties of a ligand by tuning the substituent trans to it and constitutes an unprecedented cooperative mechanism that involves two boryl ligands in the same molecule operating differently, one as a Lewis acid and the other one as a Lewis base, in cooperation with the metal. In addition, reactivity towards different nucleophiles such as amines or ammonia confirmed the electrophilic nature of the Bcat moiety, allowing the formation of aminoboranes.
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spelling pubmed-81792742021-06-22 Ambiphilic boryl groups in a neutral Ni(ii) complex: a new activation mode of H(2) Ríos, Pablo Borge, Javier Fernández de Córdova, Francisco Sciortino, Giuseppe Lledós, Agustí Rodríguez, Amor Chem Sci Chemistry The concept of metal–ligand cooperation opens new avenues for the design of catalytic systems that may offer alternative reactivity patterns to the existing ones. Investigations of this concept with ligands bearing a boron center in their skeleton established mechanistic pathways for the activation of small molecules in which the boron atom usually performs as an electrophile. Here, we show how this electrophilic behavior can be modified by the ligand trans to the boron center, evincing its ambiphilic nature. Treatment of diphosphinoboryl (PBP) nickel–methyl complex 1 with bis(catecholato)diboron (B(2)Cat(2)) allows for the synthesis of nickel(ii) bis-boryl complex 3 that promotes the clean and reversible heterolytic cleavage of dihydrogen leading to the formation of dihydroborate nickel complex 4. Density functional theory analysis of this reaction revealed that the heterolytic activation of H(2) is facilitated by the cooperation of both boryl moieties and the metal atom in a concerted mechanism that involves a Ni(ii)/Ni(0)/Ni(ii) process. Contrary to 1, the boron atom from the PBP ligand in 3 behaves as a nucleophile, accepting a formally protic hydrogen, whereas the catecholboryl moiety acts as an electrophile, receiving the attack from the hydride-like fragment. This manifests the dramatic change in the electronic properties of a ligand by tuning the substituent trans to it and constitutes an unprecedented cooperative mechanism that involves two boryl ligands in the same molecule operating differently, one as a Lewis acid and the other one as a Lewis base, in cooperation with the metal. In addition, reactivity towards different nucleophiles such as amines or ammonia confirmed the electrophilic nature of the Bcat moiety, allowing the formation of aminoboranes. The Royal Society of Chemistry 2020-12-22 /pmc/articles/PMC8179274/ /pubmed/34164022 http://dx.doi.org/10.1039/d0sc06014c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Ríos, Pablo
Borge, Javier
Fernández de Córdova, Francisco
Sciortino, Giuseppe
Lledós, Agustí
Rodríguez, Amor
Ambiphilic boryl groups in a neutral Ni(ii) complex: a new activation mode of H(2)
title Ambiphilic boryl groups in a neutral Ni(ii) complex: a new activation mode of H(2)
title_full Ambiphilic boryl groups in a neutral Ni(ii) complex: a new activation mode of H(2)
title_fullStr Ambiphilic boryl groups in a neutral Ni(ii) complex: a new activation mode of H(2)
title_full_unstemmed Ambiphilic boryl groups in a neutral Ni(ii) complex: a new activation mode of H(2)
title_short Ambiphilic boryl groups in a neutral Ni(ii) complex: a new activation mode of H(2)
title_sort ambiphilic boryl groups in a neutral ni(ii) complex: a new activation mode of h(2)
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179274/
https://www.ncbi.nlm.nih.gov/pubmed/34164022
http://dx.doi.org/10.1039/d0sc06014c
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