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A synthetic, catalytic and theoretical investigation of an unsymmetrical SCN pincer palladacycle

The SCN ligand 2-{3-[(methylsulfanyl)methyl]phenyl}pyridine, 1, has been synthesized starting from an initial Suzuki–Miyaura (SM) coupling between 3-((hydroxymethyl)phenyl)boronic acid and 2-bromopyridine. The C–H activation of 1 with in situ formed Pd(MeCN)(4)(BF(4))(2) has been studied and leads t...

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Autores principales: Roffe, Gavin W., Boonseng, Sarote, Baltus, Christine B., Coles, Simon J., Day, Iain J., Jones, Rhiannon N., Press, Neil J., Ruiz, Mario, Tizzard, Graham J., Cox, Hazel, Spencer, John
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4852630/
https://www.ncbi.nlm.nih.gov/pubmed/27152207
http://dx.doi.org/10.1098/rsos.150656
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author Roffe, Gavin W.
Boonseng, Sarote
Baltus, Christine B.
Coles, Simon J.
Day, Iain J.
Jones, Rhiannon N.
Press, Neil J.
Ruiz, Mario
Tizzard, Graham J.
Cox, Hazel
Spencer, John
author_facet Roffe, Gavin W.
Boonseng, Sarote
Baltus, Christine B.
Coles, Simon J.
Day, Iain J.
Jones, Rhiannon N.
Press, Neil J.
Ruiz, Mario
Tizzard, Graham J.
Cox, Hazel
Spencer, John
author_sort Roffe, Gavin W.
collection PubMed
description The SCN ligand 2-{3-[(methylsulfanyl)methyl]phenyl}pyridine, 1, has been synthesized starting from an initial Suzuki–Miyaura (SM) coupling between 3-((hydroxymethyl)phenyl)boronic acid and 2-bromopyridine. The C–H activation of 1 with in situ formed Pd(MeCN)(4)(BF(4))(2) has been studied and leads to a mixture of palladacycles, which were characterized by X-ray crystallography. The monomeric palladacycle LPdCl 6, where L-H = 1, has been synthesized, and tested in SM couplings of aryl bromides, where it showed moderate activity. Density functional theory and the atoms in molecules (AIM) method have been used to investigate the formation and bonding of 6, revealing a difference in the nature of the Pd–S and Pd–N bonds. It was found that S-coordination to the metal in the rate determining C–H bond activation step leads to better stabilization of the Pd(II) centre (by 13–28 kJ mol(−1)) than with N-coordination. This is attributed to the electron donating ability of the donor atoms determined by Bader charges. The AIM analysis also revealed that the Pd–N bonds are stronger than the Pd–S bonds influencing the stability of key intermediates in the palladacycle formation reaction pathway.
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spelling pubmed-48526302016-05-05 A synthetic, catalytic and theoretical investigation of an unsymmetrical SCN pincer palladacycle Roffe, Gavin W. Boonseng, Sarote Baltus, Christine B. Coles, Simon J. Day, Iain J. Jones, Rhiannon N. Press, Neil J. Ruiz, Mario Tizzard, Graham J. Cox, Hazel Spencer, John R Soc Open Sci Chemistry The SCN ligand 2-{3-[(methylsulfanyl)methyl]phenyl}pyridine, 1, has been synthesized starting from an initial Suzuki–Miyaura (SM) coupling between 3-((hydroxymethyl)phenyl)boronic acid and 2-bromopyridine. The C–H activation of 1 with in situ formed Pd(MeCN)(4)(BF(4))(2) has been studied and leads to a mixture of palladacycles, which were characterized by X-ray crystallography. The monomeric palladacycle LPdCl 6, where L-H = 1, has been synthesized, and tested in SM couplings of aryl bromides, where it showed moderate activity. Density functional theory and the atoms in molecules (AIM) method have been used to investigate the formation and bonding of 6, revealing a difference in the nature of the Pd–S and Pd–N bonds. It was found that S-coordination to the metal in the rate determining C–H bond activation step leads to better stabilization of the Pd(II) centre (by 13–28 kJ mol(−1)) than with N-coordination. This is attributed to the electron donating ability of the donor atoms determined by Bader charges. The AIM analysis also revealed that the Pd–N bonds are stronger than the Pd–S bonds influencing the stability of key intermediates in the palladacycle formation reaction pathway. The Royal Society 2016-04-06 /pmc/articles/PMC4852630/ /pubmed/27152207 http://dx.doi.org/10.1098/rsos.150656 Text en http://creativecommons.org/licenses/by/4.0/ © 2016 The Authors. Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.
spellingShingle Chemistry
Roffe, Gavin W.
Boonseng, Sarote
Baltus, Christine B.
Coles, Simon J.
Day, Iain J.
Jones, Rhiannon N.
Press, Neil J.
Ruiz, Mario
Tizzard, Graham J.
Cox, Hazel
Spencer, John
A synthetic, catalytic and theoretical investigation of an unsymmetrical SCN pincer palladacycle
title A synthetic, catalytic and theoretical investigation of an unsymmetrical SCN pincer palladacycle
title_full A synthetic, catalytic and theoretical investigation of an unsymmetrical SCN pincer palladacycle
title_fullStr A synthetic, catalytic and theoretical investigation of an unsymmetrical SCN pincer palladacycle
title_full_unstemmed A synthetic, catalytic and theoretical investigation of an unsymmetrical SCN pincer palladacycle
title_short A synthetic, catalytic and theoretical investigation of an unsymmetrical SCN pincer palladacycle
title_sort synthetic, catalytic and theoretical investigation of an unsymmetrical scn pincer palladacycle
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4852630/
https://www.ncbi.nlm.nih.gov/pubmed/27152207
http://dx.doi.org/10.1098/rsos.150656
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