TY - JOUR
T1 - Exploring catalyst and solvent effects in the multicomponent synthesis of pyridine-3,5-dicarbonitriles
AU - Guo, Kai
AU - Thompson, Mark J.
AU - Chen, Beining
PY - 2009/9/18
Y1 - 2009/9/18
N2 - (Chemical Equation Presented) The effects of an ionic base, tetrabutylammoniumhydroxide (TBAH), and an amine base, piperidine, on the direct synthesis of pyridine-3,5-dicarbonitriles using a multicomponent reaction (MCR) from aldehydes, malononitrile, and thiols were systematically investigated. The amine base showed better results when the MCR was performed in ethanol, whereas employing the ionic base in acetonitrile resulted in similar yields but in a much shorter reaction time. A modified protocol to overcome the difficulty in the direct synthesis of pyridine-3,5-dicarbonitriles via the MCR from sterically hindered aldehydes using either base was realized by changing the reaction solvent from ethanol to acetonitrile. Mechanistically, the two catalysts were found to each promote different pathways in the final oxidation step of the penultimate product, 1,4-dihydropyridine 6. A reaction intermediate, Knoevenagel adduct 7, plays the major role in the amine base-catalyzed system, while in the presence of an ionic base, aerobic oxygen acts as the primary oxidant.
AB - (Chemical Equation Presented) The effects of an ionic base, tetrabutylammoniumhydroxide (TBAH), and an amine base, piperidine, on the direct synthesis of pyridine-3,5-dicarbonitriles using a multicomponent reaction (MCR) from aldehydes, malononitrile, and thiols were systematically investigated. The amine base showed better results when the MCR was performed in ethanol, whereas employing the ionic base in acetonitrile resulted in similar yields but in a much shorter reaction time. A modified protocol to overcome the difficulty in the direct synthesis of pyridine-3,5-dicarbonitriles via the MCR from sterically hindered aldehydes using either base was realized by changing the reaction solvent from ethanol to acetonitrile. Mechanistically, the two catalysts were found to each promote different pathways in the final oxidation step of the penultimate product, 1,4-dihydropyridine 6. A reaction intermediate, Knoevenagel adduct 7, plays the major role in the amine base-catalyzed system, while in the presence of an ionic base, aerobic oxygen acts as the primary oxidant.
UR - http://www.scopus.com/inward/record.url?scp=70249150446&partnerID=8YFLogxK
U2 - 10.1021/jo901232b
DO - 10.1021/jo901232b
M3 - 文章
C2 - 19678630
AN - SCOPUS:70249150446
SN - 0022-3263
VL - 74
SP - 6999
EP - 7006
JO - Journal of Organic Chemistry
JF - Journal of Organic Chemistry
IS - 18
ER -