Outer-Sphere Electrophilic Fluorination of Organometallic Complexes
Author(s) -
Lucy M. Milner,
Natalie E. Pridmore,
Adrian C. Whitwood,
Jason M. Lynam,
John M. Slattery
Publication year - 2015
Publication title -
journal of the american chemical society
Language(s) - Uncategorized
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.5b06547
Subject(s) - chemistry , electrophile , regioselectivity , reactivity (psychology) , electrophilic fluorination , fluorine , coordination sphere , pyridine , alkyl , organometallic chemistry , ruthenium , electrophilic addition , group 2 organometallic chemistry , metal , organic chemistry , molecule , catalysis , medicine , alternative medicine , pathology
Organofluorine chemistry plays a key role in materials science, pharmaceuticals, agrochemicals, and medical imaging. However, the formation of new carbon-fluorine bonds with controlled regiochemistry and functional group tolerance is synthetically challenging. The use of metal complexes to promote fluorination reactions is of great current interest, but even state-of-the-art approaches are limited in their substrate scope, often require activated substrates, or do not allow access to desirable functionality, such as alkenyl C(sp(2))-F or chiral C(sp(3))-F centers. Here, we report the formation of new alkenyl and alkyl C-F bonds in the coordination sphere of ruthenium via an unprecedented outer-sphere electrophilic fluorination mechanism. The organometallic species involved are derived from nonactivated substrates (pyridine and terminal alkynes), and C-F bond formation occurs with full regio- and diastereoselectivity. The fluorinated ligands that are formed are retained at the metal, which allows subsequent metal-mediated reactivity.
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