ZnO Nanopowder: An Efficient Catalyst for the Preparation of 2,4,6-Triaryl Pyridines under Solvent-Free Condition

Author:

Reza Mohammad,Shafiee Mohammad,Moloudi Raheleh,Ghashang Majid

Publisher

Elsevier BV

Reference6 articles.

1. Pericas A, Shafir A, Vallribera A. Zinc(II) oxide: an efficient catalyst for selective transesterification of (-ketoesters. Tetrahedron 2008; 64: 9258-63; (b) Shaterian HR, Ghashang M. A Highly Efficient Method for the Silylation of Alcohols, Phenols, and Naphthols Using HMDS in the Presence of Zinc Oxide (ZnO) as Economical Heterogeneous Catalyst. Phosphorus, Sulfur, Silicon Relat Elem 2008; 183: 194-204.

2. Look DC. Recent advances in ZnO materials and devices. Mater Sci Eng B-Adv 2001; 80: 383-7; (b) Tian ZR, Voigt JA, Liu J, Mckenzie B, Mcdermott MJ, Rodriguez MA, et-al. Complex and oriented ZnO nanostructures. Nature Materials 2003; 2: 821-6; (c) Wang XD, Summers CJ, Wang ZL. Large-Scale Hexagonal-Patterned Growth of Aligned ZnO Nanorods for Nano-Optoelectronics and Nanosensor Arrays. Nano Lett. 2004; 4: 423-6.

3. Mirjafary Z, Saeidian H, Sadeghi A, Moghaddam FM. ZnO nanoparticles: An efficient nanocatalyst for the synthesis of (-acetamido ketones/esters via a multi-component reaction. Catal. Commun. 2008; 9: 299-306; (b) Hosseini-Sarvari M, Etemad S. Nanosized zinc oxide as a catalyst for the rapid and green synthesis of (-phosphono malonates. Tetrahedron 2008; 64: 5519-23.

4. Kim BY, Ahn JB, Lee HW, Kang SK, Lee JH, Shin JS, et-al. Synthesis and Biological Activity of Novel Substituted Pyridines and Purines Containing 2,4-Thiazolidinedione. Eur. J. Med. Chem. 2004; 39: 433-47; (b) Enyedy IJ, Sakamuri S, Zaman WA, Johnson KM, Wang S. Pharmacophore-Based discovery of substituted pyridines as novel dopamine transporter inhibitors. Bioorg. Med. Chem. Lett. 2003; 13: 513-7; (c) Pillai AD, Rathod PD, Franklin PX, Patel M, Nivsarkar M, Vasu KK, et-al. Novel drug designing approach for dual inhibitors as anti-inflammatory agents: implication of pyridine template. Biochem. Biophys. Res. Commun. 2003; 301: 183-6.

5. Dilthey W. Uber arylierte Pyridine und ihre Beziehungen zu den entsprechenden Pyryliumverbindungen II. J. Prakt. Chem. 1921; 102: 209-40; (b) Zecher W, Krohnke F. Eine neue Synthese substituierter Pyridine, I. Grundzuge der Synthese. Chem. Ber. 1961; 94: 690-7; (c) Frank RL, Seven RP. Pyridines. IV. A Study of the Chichibabin Synthesis. J. Am. Chem. Soc. 1949; 71: 2629-35; (d) Adib M, Tahermansouri H, Aali Koloogani S, Mohammadi B, Bijanzadeh HR. Kršhnke pyridines: an efficient solvent-free synthesis of 2,4,6-triarylpyridines. Tetrahedron Lett. 2006; 47: 5957-60.

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