Synthesis 2004(13): 2216-2221  
DOI: 10.1055/s-2004-829190
SPECIALTOPIC
© Georg Thieme Verlag Stuttgart · New York

Allyltrimethoxysilane Addition to N-Acylhydrazones: Two Catalytic Methods Employing CuCl and Fluoride

Hui Ding, Gregory K. Friestad*
Department of Chemistry, University of Vermont, Burlington, Vermont 05405, USA
Fax: +1(802)6568705; e-Mail: gregory.friestad@uvm.edu;
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Publication History

Received 21 May 2004
Publication Date:
13 August 2004 (online)

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Abstract

Two alternative reaction conditions developed for allyl­trimethoxysilane addition to N-benzoylhydrazones enable efficient and versatile access to homoallylic α-branched amines. Aldehyde hydrazones, both aromatic and aliphatic, and ketone hydrazones all give good yields. One set of conditions employs catalytic amounts of CuCl and tetrabutylammonium triphenyldifluorosilicate (TBAT); improved yields and reaction times are obtained at 80 °C in the presence of bis(diphenylphosphino)ethane (dppe) and t-BuOH as additives. The second set of conditions employs 20 mol% TBAT as a fluoride source in a metal-free catalytic system; here t-BuOH offers only modest improvement, and ambient temperatures are optimal. For example, under this second set of conditions, the N-benzoylhydrazone from ethyl pyruvate affords the homoallylic tert-alkyl amine adduct in 78% yield.

9

In combination with t-BuOH as proton source, the yield with t-BuBOX improved to 51%, but the enantioselectivity decreased to only 1.8% ee.

14

Proton transfer would convert 8 to a more stable amide anion, which could react with allyltrimethoxysilane at the amide oxygen. This O-silylation pathway for the autocatalysis is consistent with the complete absence of reactivity when the proton transfer is blocked by N-methylation (see ref.10b).