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Mechanistic study of the ligand controlled regioselectivity in iridium catalyzed C–H borylation of aromatic imines

As a major challenge in C–H borylation, how to control the selectivity has attracted lots of attention, however, the related mechanistic information still needs to be uncovered. Herein, density functional theory (DFT) has been used to study the mechanism for the ligand controlled regioselectivity in...

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Autores principales: Liu, Yuhua, Chen, Jipei, Zhan, Kangsheng, Shen, Yiqiang, Gao, Hui, Yao, Lingmin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9088018/
https://www.ncbi.nlm.nih.gov/pubmed/35547887
http://dx.doi.org/10.1039/c8ra07886f
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author Liu, Yuhua
Chen, Jipei
Zhan, Kangsheng
Shen, Yiqiang
Gao, Hui
Yao, Lingmin
author_facet Liu, Yuhua
Chen, Jipei
Zhan, Kangsheng
Shen, Yiqiang
Gao, Hui
Yao, Lingmin
author_sort Liu, Yuhua
collection PubMed
description As a major challenge in C–H borylation, how to control the selectivity has attracted lots of attention, however, the related mechanistic information still needs to be uncovered. Herein, density functional theory (DFT) has been used to study the mechanism for the ligand controlled regioselectivity in the iridium-catalyzed C–H borylation of aromatic imines, which is inspired by experimental observations (R. Bisht, B. Chattopadhyay, J. Am. Chem. Soc., 2016, 138, 84–87). The proposed Ir(i)–Ir(iii) catalytic cycle includes (i) the oxidative addition of the C–H bond to iridium(i); (ii) the reductive elimination of a C–B bond; (iii) the oxidative addition of B(2)pin(2) to an iridium(i) hydride complex; and (iv) the reductive elimination of a B–H bond. The oxidative addition of a C–H bond to the iridium center is the determining step. For the ligand AQ, ortho-selectivity is proposed to be attributed to the decreased steric hindrance and increased electron donating effect of AQ (8-aminoquinoline) which promotes proton-transfer in the ortho-transition state of C–H activation. While, for the TMP ligand, the steric repulsion between the TMP (4,5,7,8-tetramethyl-1, 10-phenanthroline) ligand and the ortho-substituted imine hinders the ortho C–H activation and favors meta borylation. Our calculations provide insights into further ligand design to achieve different regioselective borylation of aromatics. Guided by the results, the regioselectivity in the borylation of aromatics may be achieved by accordingly modifying the electronic and steric substituents of the ligand.
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spelling pubmed-90880182022-05-10 Mechanistic study of the ligand controlled regioselectivity in iridium catalyzed C–H borylation of aromatic imines Liu, Yuhua Chen, Jipei Zhan, Kangsheng Shen, Yiqiang Gao, Hui Yao, Lingmin RSC Adv Chemistry As a major challenge in C–H borylation, how to control the selectivity has attracted lots of attention, however, the related mechanistic information still needs to be uncovered. Herein, density functional theory (DFT) has been used to study the mechanism for the ligand controlled regioselectivity in the iridium-catalyzed C–H borylation of aromatic imines, which is inspired by experimental observations (R. Bisht, B. Chattopadhyay, J. Am. Chem. Soc., 2016, 138, 84–87). The proposed Ir(i)–Ir(iii) catalytic cycle includes (i) the oxidative addition of the C–H bond to iridium(i); (ii) the reductive elimination of a C–B bond; (iii) the oxidative addition of B(2)pin(2) to an iridium(i) hydride complex; and (iv) the reductive elimination of a B–H bond. The oxidative addition of a C–H bond to the iridium center is the determining step. For the ligand AQ, ortho-selectivity is proposed to be attributed to the decreased steric hindrance and increased electron donating effect of AQ (8-aminoquinoline) which promotes proton-transfer in the ortho-transition state of C–H activation. While, for the TMP ligand, the steric repulsion between the TMP (4,5,7,8-tetramethyl-1, 10-phenanthroline) ligand and the ortho-substituted imine hinders the ortho C–H activation and favors meta borylation. Our calculations provide insights into further ligand design to achieve different regioselective borylation of aromatics. Guided by the results, the regioselectivity in the borylation of aromatics may be achieved by accordingly modifying the electronic and steric substituents of the ligand. The Royal Society of Chemistry 2018-10-16 /pmc/articles/PMC9088018/ /pubmed/35547887 http://dx.doi.org/10.1039/c8ra07886f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Liu, Yuhua
Chen, Jipei
Zhan, Kangsheng
Shen, Yiqiang
Gao, Hui
Yao, Lingmin
Mechanistic study of the ligand controlled regioselectivity in iridium catalyzed C–H borylation of aromatic imines
title Mechanistic study of the ligand controlled regioselectivity in iridium catalyzed C–H borylation of aromatic imines
title_full Mechanistic study of the ligand controlled regioselectivity in iridium catalyzed C–H borylation of aromatic imines
title_fullStr Mechanistic study of the ligand controlled regioselectivity in iridium catalyzed C–H borylation of aromatic imines
title_full_unstemmed Mechanistic study of the ligand controlled regioselectivity in iridium catalyzed C–H borylation of aromatic imines
title_short Mechanistic study of the ligand controlled regioselectivity in iridium catalyzed C–H borylation of aromatic imines
title_sort mechanistic study of the ligand controlled regioselectivity in iridium catalyzed c–h borylation of aromatic imines
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9088018/
https://www.ncbi.nlm.nih.gov/pubmed/35547887
http://dx.doi.org/10.1039/c8ra07886f
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