COUMARINS VIA KNOEVENAGEL CONDENSATION REACTION (KCR) AND PECHMANN CONDENSATION REACTION

Authors

  • KOK TONG WONG Department of Chemistry, Faculty of Science, Universiti Teknologi Malaysia, 81310 UTM Johor Bahru, Johor Darul Ta'zim, Malaysia
  • NORAZAH BASAR Department of Chemistry, Faculty of Science, Universiti Teknologi Malaysia, 81310 UTM Johor Bahru, Johor Darul Ta'zim, Malaysia

DOI:

https://doi.org/10.11113/jt.v57.1525

Keywords:

Coumarin derivatives, knoevenagel condensation reaction, pechmann condensation reaction

Abstract

Knoevenagel condensation reaction (KCR) and Pechmann condensation reaction are the simplest and most widely used method to synthesize various substituted coumarins. The compounds such as 3–acetylcoumarin, 3–acetyl–7–(diethylamino)coumarin, and 7–(diethylamino)–3–(1–oxobutyl)coumarin were synthesized by KCR method which involved the condensation of salicylaldehyde or 4–(diethylamino)salicylaldehyde with ethyl acetoacetate, 4–(diethylamino)– salicylaldehyde with ethyl butyrylacetate in the presence of dimethylamine as a catalyst. Meanwhile, 7–hydroxy–4–methylcoumarin, 4–methyl–2H–benzo[h]chromen–2–one, 7–hydroxy–4,8–dimethyl– coumarin, 7–hydroxy–4–propylcoumarin, 4–propyl–2H–benzo[h]chromen–2–one, 7–hydroxy–8–methyl–4–propylcoumarin and 7,8–dihydroxy–4–propylcoumarin were synthesized through Pechmann condensation reaction by condensation of resorcinol, 1–napthol or 2–methylresorcinol with ethyl acetoacetate, and resorcinol, 1–napthol, 2–methylresorcinol or pyrogallol with ethyl butyrylacetate, respectively in the presence of sulphuric acid as a catalyst. All compounds were characterized by spectroscopic techniques using infrared (IR), proton and carbon nuclear magnetic resonance (1H and 13C NMR).

References

A. Lacy, R. O’. Kennedy. 2004. Studies on Coumarin-related Compounds to Determine Their Therapeutic Role in the Treatment of Cancer. Current Pharmaceutical Design. 10: 3797-3811.

Tiina Ojala, Biological screening of plants coumarins. Academic Dissertation. Faculty of Science of the University of Helsinki. 2001.

R. O’. Kennedy and R. D. Thornes. 1997. Coumarin: Biology, Application and Modes of Action.

Ksuyo Ohga, Akira Shinpo, Sadaharu Suga, Hironori Arakawa. 2001. A Coumarin Derivative Dye Sensitized Nanocrystalline Tio2 Solar Cell Having a High Solar Energy Conversion Efficiency Up to 5.6%. Chem Commun. 569-570.

M. Givel. 2003. A Comparison of US and Norwegian Regulation of Coumarin in Tobacco Products. Tobacco Control. 12: 401-405.

I. Kostova. 2005. Synthetic and Natural Coumarins as Cytotoxic Agents. Curr. Med. Chem.–Anti-Cancer Agents. 5: 29-46.

P. Munshi, K. N. Venugopala, B. S. Jayashree and T. N. Guru Row. 2004. Concomitant Polymorphism in 3-Acetylcoumarin: Role of Weak C-H ï¹’ï¹’ï¹’O and C-H ï¹’ï¹’ï¹’Ï€ Interactions. Crystal Growth and Design. 4(6): 1105-1107,

M. Thimons, C. A. Chau, and M. Achalabun. 1998. The Pechmann Reaction. Journal of Chemistry Education. 75(12).

Chakravati and Duhkhaharan. 1935. Synthesis of Coumarin from Phenols and Î’-Ketonic Esters. Use of Various Condensing Agents. Journal of The Indian Chemical Society. 12: 536-539.

S. Rangaswami and T. R. Seshadri. 1937. Constitution of Coumarinopyrones Derived from 7-Hydroxy-Coumarins. Indian Academy of Science. 6A: 112-118.

L. W. Lawrence Woo, A. Purohit, B. Malini, M. J. Reed and B. V. J. Potter. 2000. Potent Active Site-Directed Inhibition of Steroid Sulphatase by Tricyclic Coumarin-Based Sulphamates. Chemistry and Biology. 7(10): 773-791.

X. Li, Y. X. Zhao, T. Wang, M. Q. Shi and F. P. Wu. 2007. Coumarin Derivatives with Enhanced Two-Photon Absorption Cross Sections. Dyes and Pigments. 74: 108-112.

F. Borges, F. Roleira, N. Milhzes, L. Santana and E. Uriarte. 2005. Simple Coumarins and Analogues in Medicinal Chemistry: Occurrence, Synthesis and Biological Activity. Current Medicinal Chemistry. 12: 887-916.

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Published

2012-02-15

How to Cite

COUMARINS VIA KNOEVENAGEL CONDENSATION REACTION (KCR) AND PECHMANN CONDENSATION REACTION. (2012). Jurnal Teknologi (Sciences & Engineering), 57(1). https://doi.org/10.11113/jt.v57.1525