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Are bis(pyridine)iodine(i) complexes applicable for asymmetric halogenation?

Enantiopure halogenated molecules are of tremendous importance as synthetic intermediates in the construction of pharmaceuticals, fragrances, flavours, natural products, pesticides, and functional materials. Enantioselective halofunctionalizations remain poorly understood and generally applicable pr...

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Autores principales: von der Heiden, Daniel, Németh, Flóra Boróka, Andreasson, Måns, Sethio, Daniel, Pápai, Imre, Erdelyi, Mate
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/PMC8494190/
https://www.ncbi.nlm.nih.gov/pubmed/34522944
http://dx.doi.org/10.1039/d1ob01532j
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author von der Heiden, Daniel
Németh, Flóra Boróka
Andreasson, Måns
Sethio, Daniel
Pápai, Imre
Erdelyi, Mate
author_facet von der Heiden, Daniel
Németh, Flóra Boróka
Andreasson, Måns
Sethio, Daniel
Pápai, Imre
Erdelyi, Mate
author_sort von der Heiden, Daniel
collection PubMed
description Enantiopure halogenated molecules are of tremendous importance as synthetic intermediates in the construction of pharmaceuticals, fragrances, flavours, natural products, pesticides, and functional materials. Enantioselective halofunctionalizations remain poorly understood and generally applicable procedures are lacking. The applicability of chiral trans-chelating bis(pyridine)iodine(i) complexes in the development of substrate independent, catalytic enantioselective halofunctionalization has been explored herein. Six novel chiral bidentate pyridine donor ligands have been designed, routes for their synthesis developed and their [N–I–N](+)-type halogen bond complexes studied by (15)N NMR and DFT. The chiral complexes encompassing a halogen bond stabilized iodenium ion are shown to be capable of efficient iodenium transfer to alkenes; however, without enantioselectivity. The lack of stereoselectivity is shown to originate from the availability of multiple ligand conformations of comparable energies and an insufficient steric influence by the chiral ligand. Substrate preorganization by the chiral catalyst appears a necessity for enantioselective halofunctionalization.
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spelling pubmed-84941902021-10-25 Are bis(pyridine)iodine(i) complexes applicable for asymmetric halogenation? von der Heiden, Daniel Németh, Flóra Boróka Andreasson, Måns Sethio, Daniel Pápai, Imre Erdelyi, Mate Org Biomol Chem Chemistry Enantiopure halogenated molecules are of tremendous importance as synthetic intermediates in the construction of pharmaceuticals, fragrances, flavours, natural products, pesticides, and functional materials. Enantioselective halofunctionalizations remain poorly understood and generally applicable procedures are lacking. The applicability of chiral trans-chelating bis(pyridine)iodine(i) complexes in the development of substrate independent, catalytic enantioselective halofunctionalization has been explored herein. Six novel chiral bidentate pyridine donor ligands have been designed, routes for their synthesis developed and their [N–I–N](+)-type halogen bond complexes studied by (15)N NMR and DFT. The chiral complexes encompassing a halogen bond stabilized iodenium ion are shown to be capable of efficient iodenium transfer to alkenes; however, without enantioselectivity. The lack of stereoselectivity is shown to originate from the availability of multiple ligand conformations of comparable energies and an insufficient steric influence by the chiral ligand. Substrate preorganization by the chiral catalyst appears a necessity for enantioselective halofunctionalization. The Royal Society of Chemistry 2021-09-09 /pmc/articles/PMC8494190/ /pubmed/34522944 http://dx.doi.org/10.1039/d1ob01532j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
von der Heiden, Daniel
Németh, Flóra Boróka
Andreasson, Måns
Sethio, Daniel
Pápai, Imre
Erdelyi, Mate
Are bis(pyridine)iodine(i) complexes applicable for asymmetric halogenation?
title Are bis(pyridine)iodine(i) complexes applicable for asymmetric halogenation?
title_full Are bis(pyridine)iodine(i) complexes applicable for asymmetric halogenation?
title_fullStr Are bis(pyridine)iodine(i) complexes applicable for asymmetric halogenation?
title_full_unstemmed Are bis(pyridine)iodine(i) complexes applicable for asymmetric halogenation?
title_short Are bis(pyridine)iodine(i) complexes applicable for asymmetric halogenation?
title_sort are bis(pyridine)iodine(i) complexes applicable for asymmetric halogenation?
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8494190/
https://www.ncbi.nlm.nih.gov/pubmed/34522944
http://dx.doi.org/10.1039/d1ob01532j
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