Catalysis through Temporary Intramolecularity: Mechanistic Investigations on Aldehyde-Catalyzed Cope-type Hydroamination Lead to the Discovery of a More Efficient Tethering Catalyst
- 2 October 2012
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 134 (40), 16571-16577
- https://doi.org/10.1021/ja303320x
Abstract
Mechanistic investigations on the aldehyde-catalyzed intermolecular hydroamination of allylic amines using N-alkylhydroxylamines are presented. Under the reaction conditions, the presence of a specific aldehyde catalyst allows formation of a mixed aminal intermediate, which permits intramolecular Cope-type hydroamination. The reaction was determined to be first-order in both the aldehyde catalyst (alpha-benzyloxyacetaldehyde) and the allylic amine. However, the reaction displays an inverse order behavior in benzylhydroxylamine, which reveals a significant off-cycle pathway and highlights the importance of an aldehyde catalyst that promotes a reversible aminal formation. Kinetic isotope effect experiments suggest that hydroamination is the rate-limiting step of this catalytic cycle. Overall, these results enabled the elaboration of a more accurate catalytic cycle and led to the development of a more efficient catalytic system for alkene hydroamination. The use of 5-10 mol % of paraformaldehyde proved more effective than the use of 20 mol % of a-benzyloxyacetaldehyde, leading to high yields of intermolecular hydroamination products within 24 h at 30 degrees C.This publication has 56 references indexed in Scilit:
- Tandem Rhodium‐Catalyzed Hydroformylation–Hydrogenation of Alkenes by Employing a Cooperative Ligand SystemAngewandte Chemie International Edition, 2012
- Removable Directing Groups in Organic Synthesis and CatalysisAngewandte Chemie International Edition, 2011
- Branched‐Regioselective Hydroformylation with Catalytic Amounts of a Reversibly Bound Directing GroupAngewandte Chemie International Edition, 2008
- Catalytic Scaffolding Ligands: An Efficient Strategy for Directing ReactionsJournal of the American Chemical Society, 2008
- The Catalytic Intermolecular Orthoarylation of PhenolsAngewandte Chemie International Edition, 2003
- Enhanced Selectivities for the Hydroxyl-Directed Methanolysis of Esters Using the 2-Acyl-4-aminopyridine Class of Acyl Transfer Catalysts: Ketones as Binding SitesThe Journal of Organic Chemistry, 2000
- Studies on the Mechanism of Action of 2-Formyl-4-pyrrolidinopyridine: Isolation and Characterization of a Reactive IntermediateThe Journal of Organic Chemistry, 1999
- 2-Formyl-4-pyrrolidinopyridine (FPP): A New Catalyst for the Hydroxyl-Directed Methanolysis of EstersJournal of the American Chemical Society, 1996
- A Proficient EnzymeScience, 1995
- Substrate-directable chemical reactionsChemical Reviews, 1993