Efficient Copper-Catalyzed Multicomponent Synthesis of N-Acyl Amidines via Acyl Nitrenes
Author(s) -
Kaj M. van Vliet,
Lara H. Polak,
Maxime A. Siegler,
Jarl Ivar van der Vlugt,
Célia Fonseca Guerra,
Bas de Bruin
Publication year - 2019
Publication title -
journal of the american chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.9b07140
Subject(s) - chemistry , xantphos , nitrene , amidine , catalysis , acetylide , copper , curtius rearrangement , iodide , alkyne , combinatorial chemistry , aryl , organic chemistry , medicinal chemistry , palladium , alkyl
Direct synthetic routes to amidines are desired, as they are widely present in many biologically active compounds and organometallic complexes. N -Acyl amidines in particular can be used as a starting material for the synthesis of heterocycles and have several other applications. Here, we describe a fast and practical copper-catalyzed three-component reaction of aryl acetylenes, amines, and easily accessible 1,4,2-dioxazol-5-ones to N -acyl amidines, generating CO 2 as the only byproduct. Transformation of the dioxazolones on the Cu catalyst generates acyl nitrenes that rapidly insert into the copper acetylide Cu-C bond rather than undergoing an undesired Curtius rearrangement. For nonaromatic dioxazolones, [Cu(OAc)(Xantphos)] is a superior catalyst for this transformation, leading to full substrate conversion within 10 min. For the direct synthesis of N -benzoyl amidine derivatives from aromatic dioxazolones, [Cu(OAc)(Xantphos)] proved to be inactive, but moderate to good yields were obtained when using simple copper(I) iodide (CuI) as the catalyst. Mechanistic studies revealed the aerobic instability of one of the intermediates at low catalyst loadings, but the reaction could still be performed in air for most substrates when using catalyst loadings of 5 mol %. The herein reported procedure not only provides a new, practical, and direct route to N -acyl amidines but also represents a new type of C-N bond formation.
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