| Literature DB >> 21915222 |
Sukhdeep Singh1, J Michael Köhler, Andreas Schober, G Alexander Groß.
Abstract
The Eschenmoser coupling is a useful carbon-carbon bond forming reaction which has been used in various different synthesis strategies. The reaction proceeds smoothly if S-alkylated ternary thioamides or thiolactames are used. In the case of S-alkylated secondary thioamides or thiolactames, the Eschenmoser coupling needs prolonged reaction times and elevated temperatures to deliver valuable yields. We have used a flow chemistry system to promote the Eschenmoser coupling under enhanced reaction conditions in order to convert the demanding precursors such as S-alkylated secondary thioamides and thiolactames in an efficient way. Under pressurized reaction conditions at about 220 °C, the desired Eschenmoser coupling products were obtained within 70 s residence time. The reaction kinetics was investigated and 15 examples of different building block combinations are given.Entities:
Keywords: S-alkylation; activation energy; episulfide; flow chemistry; keto imine; kinetics; sulfide contraction; triisopropyl phosphite
Year: 2011 PMID: 21915222 PMCID: PMC3170046 DOI: 10.3762/bjoc.7.135
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Eschenmoser coupling reaction with secondary S-alkylated thioamide derivatives of type 3.
Scheme 2Eschenmoser coupling sequence of S-alkylated ternary thioamides of type 7.
Figure 1Conversion of 3aa to 4aa under different flow conditions.
Figure 2Reaction kinetics analysis. Left: Rate constants with 0.1 M reaction solution. Right: Arrhenius-plot for the determined rate constants.
Product and yields received for different thio-substrates 2.
| Structure of | Product | Yielda | ||
| 48 | ||||
| 55 | ||||
| 78 | ||||
| –b | ||||
| 82 | ||||
| 69 | ||||
| 92 | ||||
| 5c | ||||
| 58 | ||||
aIsolated yields; bDecomposition during sulfide contraction; cNo product precipitation or extraction of 4ah was possible; only 3ah was isolated in smaller amount.
Product and yields for various α-bromoketones 1.
| Structure of | Product | Yielda | ||
| 48 | ||||
| 66 | ||||
| 61 | ||||
| 67 | ||||
| 72 | ||||
| 61 | ||||
| 73 | ||||
aIsolated yields.
Scheme 3Exclusive formation of thiazol 13 with dihydropyrimidine derivatives 11 take place in the case of aliphatic ketones 10 [19].
Figure 3Flow chemistry setup scheme.
Figure 4Capillary reactor with jacketed cover removed, and the process controller.