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Title: | One-Pot Magnetic Iron Oxide-Carbon Nanodot Composite-Catalyzed Cyclooxidative Aqueous Tandem Synthesis of Quinazolinones in the Presence of tert-Butyl Hydroperoxide |
Authors: | Majumdar, Biju Sarma, Daisy Jain, Siddarth Sarma, Tridib Kumar |
Issue Date: | 2018 |
Publisher: | American Chemical Society |
Citation: | Majumdar, B., Sarma, D., Jain, S., & Sarma, T. K. (2018). One-pot magnetic iron oxide-carbon nanodot composite-catalyzed cyclooxidative aqueous tandem synthesis of quinazolinones in the presence of tert-butyl hydroperoxide. ACS Omega, 3(10), 13711-13719. doi:10.1021/acsomega.8b01794 |
Abstract: | The development of synthetic protocols for biologically important molecules using biocompatible catalysts in aqueous medium holds the key in green and sustainable chemistry. Herein, a magnetically recoverable iron oxide-carbon dot nanocomposite has been demonstrated as an effective catalyst for cyclooxidative tandem synthesis of quinazolinones in aqueous medium using alcohols as starting materials. Fluorescent carbon dots, the newest entrant in the nanocarbon family, were used as the stabilizing agent for the iron oxide nanoparticles, and a continuous layer of carbon dots decorates the iron oxide nanoparticle surface as observed by transmission electron microscopy. The fluorescence studies demonstrated the effective electron transfer from carbon dots to the iron oxide nanoparticles resulting in complete quenching of emission owing to carbon dots, once it binds with iron oxide nanoparticles. The nanocatalyst showed high activity with significant reusability for the syntheses of quinazolinones in the presence of tert-butyl hydroperoxide (TBHP) in an aqueous medium. Controlled experiments revealed the synergistic effect of carbon dots in enhancing the catalytic activity of iron oxide, as they might influence the decomposition of TBHP into radicals owing to their peroxidase activity. These radicals stabilized over the nanoparticle surface are known to have increased lifetime compared to solution-based radicals. These surface-stabilized radicals then could catalyze the tandem reaction resulting in the formation of the quinazolinone derivatives in high yields. Copyright © 2018 American Chemical Society. |
URI: | https://doi.org/10.1021/acsomega.8b01794 https://dspace.iiti.ac.in/handle/123456789/8994 |
ISSN: | 2470-1343 |
Type of Material: | Journal Article |
Appears in Collections: | Department of Chemistry |
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