Multicomponent synthesis via acceptorless alcohol dehydrogenation: an easy access to tri-substituted pyridines
Hima P1, Vageesh M1, Raju Dey1
1Department of Chemistry, National Institute of Technology Calicut Kozhikode 673601 India rajudey@nitc.ac.in.
Abstract:
Herein, we report palladium supported on a hydroxyapatite catalyst for synthesizing tri-substituted pyridines using ammonium acetate as the nitrogen source via acceptorless alcohol dehydrogenation strategy. The strategy offers a broad substrate scope using inexpensive and readily available alcohols as the starting material. The catalyst was prepared using a simple method and analyzed by several techniques, including FE-SEM, EDS, HR-TEM, BET, XRD, FT-IR, UV-visible spectroscopy, and XPS, demonstrating the anchoring of Pd nanoparticles on hydroxyapatite in the zero oxidation state. Moreover, several controlled experiments were carried out to understand the reaction pathway and a suitable mechanism has been proposed.
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