Cargando…

Cooperative C–H activation of pyridine by PBP complexes of Rh and Ir can lead to bridging 2-pyridyls with different connectivity to the B–M unit

Pyridine and quinoline undergo selective C–H activation in the 2-position with Rh and Ir complexes of a boryl/bis(phosphine) PBP pincer ligand, resulting in a 2-pyridyl bridging the transition metal and the boron center. Examination of this reactivity with Rh and Ir complexes carrying different non-...

Descripción completa

Detalles Bibliográficos
Autores principales: Cao, Yihan, Shih, Wei-Chun, Bhuvanesh, Nattamai, Zhou, Jia, Ozerov, Oleg V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8565379/
https://www.ncbi.nlm.nih.gov/pubmed/34760201
http://dx.doi.org/10.1039/d1sc01850g
_version_ 1784593813642149888
author Cao, Yihan
Shih, Wei-Chun
Bhuvanesh, Nattamai
Zhou, Jia
Ozerov, Oleg V.
author_facet Cao, Yihan
Shih, Wei-Chun
Bhuvanesh, Nattamai
Zhou, Jia
Ozerov, Oleg V.
author_sort Cao, Yihan
collection PubMed
description Pyridine and quinoline undergo selective C–H activation in the 2-position with Rh and Ir complexes of a boryl/bis(phosphine) PBP pincer ligand, resulting in a 2-pyridyl bridging the transition metal and the boron center. Examination of this reactivity with Rh and Ir complexes carrying different non-pincer ligands on the transition metal led to the realization of the possible isomerism derived from the 2-pyridyl fragment connecting either via B–N/C–M bonds or via B–C/N–M bonds. This M–C/M–N isomerism was systematically examined for four structural types. Each of these types has a defined set of ligands on Rh/Ir besides 2-pyridyl and PBP. A pair of M–C/M–N isomers for each type was computationally examined for Rh and for Ir, totaling 16 compounds. Several of these compounds were isolated or observed in solution by experimental methods, in addition to a few 2-quinolyl variants. The DFT predictions concerning the thermodynamic preference within each M–C/M–N isomeric match the experimental findings very well. In two cases where DFT predicts <2 kcal mol(−1) difference in free energy, both isomers were experimentally observed in solution. Analysis of the structural data, of the relevant Wiberg bond indices, and of the ETS-NOCV partitioning of the interaction of the 2-pyridyl fragment with the rest of the molecule points to the strength of the M–C(pyridyl) bond as the dominant parameter determining the relative M–C/M–N isomer favorability. This M–C bond is always stronger for the analogous Ir vs. Rh compounds, but the nature of the ligand trans to it has a significant influence, as well. DFT calculations were used to evaluate the mechanism of isomerization for one of the molecule types.
format Online
Article
Text
id pubmed-8565379
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-85653792021-11-09 Cooperative C–H activation of pyridine by PBP complexes of Rh and Ir can lead to bridging 2-pyridyls with different connectivity to the B–M unit Cao, Yihan Shih, Wei-Chun Bhuvanesh, Nattamai Zhou, Jia Ozerov, Oleg V. Chem Sci Chemistry Pyridine and quinoline undergo selective C–H activation in the 2-position with Rh and Ir complexes of a boryl/bis(phosphine) PBP pincer ligand, resulting in a 2-pyridyl bridging the transition metal and the boron center. Examination of this reactivity with Rh and Ir complexes carrying different non-pincer ligands on the transition metal led to the realization of the possible isomerism derived from the 2-pyridyl fragment connecting either via B–N/C–M bonds or via B–C/N–M bonds. This M–C/M–N isomerism was systematically examined for four structural types. Each of these types has a defined set of ligands on Rh/Ir besides 2-pyridyl and PBP. A pair of M–C/M–N isomers for each type was computationally examined for Rh and for Ir, totaling 16 compounds. Several of these compounds were isolated or observed in solution by experimental methods, in addition to a few 2-quinolyl variants. The DFT predictions concerning the thermodynamic preference within each M–C/M–N isomeric match the experimental findings very well. In two cases where DFT predicts <2 kcal mol(−1) difference in free energy, both isomers were experimentally observed in solution. Analysis of the structural data, of the relevant Wiberg bond indices, and of the ETS-NOCV partitioning of the interaction of the 2-pyridyl fragment with the rest of the molecule points to the strength of the M–C(pyridyl) bond as the dominant parameter determining the relative M–C/M–N isomer favorability. This M–C bond is always stronger for the analogous Ir vs. Rh compounds, but the nature of the ligand trans to it has a significant influence, as well. DFT calculations were used to evaluate the mechanism of isomerization for one of the molecule types. The Royal Society of Chemistry 2021-10-05 /pmc/articles/PMC8565379/ /pubmed/34760201 http://dx.doi.org/10.1039/d1sc01850g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Cao, Yihan
Shih, Wei-Chun
Bhuvanesh, Nattamai
Zhou, Jia
Ozerov, Oleg V.
Cooperative C–H activation of pyridine by PBP complexes of Rh and Ir can lead to bridging 2-pyridyls with different connectivity to the B–M unit
title Cooperative C–H activation of pyridine by PBP complexes of Rh and Ir can lead to bridging 2-pyridyls with different connectivity to the B–M unit
title_full Cooperative C–H activation of pyridine by PBP complexes of Rh and Ir can lead to bridging 2-pyridyls with different connectivity to the B–M unit
title_fullStr Cooperative C–H activation of pyridine by PBP complexes of Rh and Ir can lead to bridging 2-pyridyls with different connectivity to the B–M unit
title_full_unstemmed Cooperative C–H activation of pyridine by PBP complexes of Rh and Ir can lead to bridging 2-pyridyls with different connectivity to the B–M unit
title_short Cooperative C–H activation of pyridine by PBP complexes of Rh and Ir can lead to bridging 2-pyridyls with different connectivity to the B–M unit
title_sort cooperative c–h activation of pyridine by pbp complexes of rh and ir can lead to bridging 2-pyridyls with different connectivity to the b–m unit
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8565379/
https://www.ncbi.nlm.nih.gov/pubmed/34760201
http://dx.doi.org/10.1039/d1sc01850g
work_keys_str_mv AT caoyihan cooperativechactivationofpyridinebypbpcomplexesofrhandircanleadtobridging2pyridylswithdifferentconnectivitytothebmunit
AT shihweichun cooperativechactivationofpyridinebypbpcomplexesofrhandircanleadtobridging2pyridylswithdifferentconnectivitytothebmunit
AT bhuvaneshnattamai cooperativechactivationofpyridinebypbpcomplexesofrhandircanleadtobridging2pyridylswithdifferentconnectivitytothebmunit
AT zhoujia cooperativechactivationofpyridinebypbpcomplexesofrhandircanleadtobridging2pyridylswithdifferentconnectivitytothebmunit
AT ozerovolegv cooperativechactivationofpyridinebypbpcomplexesofrhandircanleadtobridging2pyridylswithdifferentconnectivitytothebmunit