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Synthetic Communications
An International Journal for Rapid Communication of Synthetic Organic Chemistry
Volume 39, 2009 - Issue 6
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Original Articles

Highly Efficient Michael Addition Reaction of Amines Catalyzed by Silica-Supported Aluminum Chloride

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Pages 1109-1119 | Received 02 Jul 2008, Published online: 25 Feb 2009

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Habib Firouzabadi, Naser Iranpoor & Soghra Farahi. (2018) TiCl2(OTf)-SiO2: A solid stable lewis acid catalyst for Michael addition of α-Aminophosphonates, Amines, Indoles and Pyrrole. Phosphorus, Sulfur, and Silicon and the Related Elements 193:5, pages 317-323.
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Pranjal Kalita, Choitayna Dev Pegu, Prantu Dutta & Pranjal K. Baruah. (2014) Room temperature solvent free aza-Michael reactions over nano-cage mesoporous materials. Journal of Molecular Catalysis A: Chemical 394, pages 145-150.
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Subrahmanya Ishwar Bhat & Darshak R. Trivedi. (2013) Fast and efficient synthesis of N-substituted β-aminobutyric acids by grinding at room temperature. Environmental Chemistry Letters 11:1, pages 91-97.
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Shuguang Zhou, Mingxia Xu, Siyu Ye, Dashuai Li, Jing Xu, Pei Mao & Jing Xiong. (2012) Facile Aza-Michael Additions of Uracil Derivatives to Acrylates. Journal of Chemical Research 36:2, pages 114-117.
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V. R. Choudhary, D. K. Dumbre & S. K. Patil. (2012) FeCl3/Montmorillonite K10 as an efficient catalyst for solvent-free aza-Michael reaction between amine and α,β-unsaturated compounds. RSC Advances 2:18, pages 7061.
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Jitendra J. Gangwal & Mohan G. Kulkarni. (2011) Synthesis and characterization of bile acid‐based poly β amino esters for paclitaxel delivery. Journal of Applied Polymer Science 122:1, pages 220-232.
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Yan Wang, Yan-Qin Yuan & Sheng-Rong Guo. (2009) Silica Sulfuric Acid Promotes Aza-Michael Addition Reactions under Solvent-Free Condition as a Heterogeneous and Reusable Catalyst. Molecules 14:11, pages 4779-4789.
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Mohammad R. Saidi, Yaghoub Pourshojaei & Fezzeh Aryanasab. (2009) ChemInform Abstract: Highly Efficient Michael Addition Reaction of Amines Catalyzed by Silica‐Supported Aluminum Chloride.. ChemInform 40:33.
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