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Synthetic Communications
An International Journal for Rapid Communication of Synthetic Organic Chemistry
Volume 41, 2011 - Issue 12
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Original Articles

Simple and Convenient Approach for Synthesis of Tetrahydroquinoline Derivatives and Studies on Aza-Cope Rearrangement

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Pages 1809-1828 | Received 25 Jan 2010, Published online: 29 Apr 2011

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Saet Byeol Bang & Jinho Kim. (2018) Efficient dehydrogenation of 1,2,3,4-tetrahydroquinolines mediated by dialkyl azodicarboxylates. Synthetic Communications 48:11, pages 1291-1298.
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Articles from other publishers (15)

Vasilissa V. Shirokova, Viktoria A. Ikonnikova, Pavel N. Solyev, Vladislav A. Lushpa, Alexander A. Korlyukov, Alexander D. Volodin, Nadezhda S. Baleeva, Mikhail S. Baranov & Andrey A. Mikhaylov. (2021) 1,5-Hydride-Shift-Triggered Cyclization for the Synthesis of Unsymmetric Julolidines. Synthesis 53:24, pages 4689-4699.
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Babak Kaboudin, Masoumeh Sohrabi & Foad Kazemi. (2021) Synthesis of julolidines via one‐pot cascade three component Povarov reaction in the presence of silica sulfuric acid . Journal of Heterocyclic Chemistry 58:8, pages 1594-1600.
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Shyam Kumar Banjare, Pragati Biswal & Ponneri Chandrababu Ravikumar. (2020) Cobalt-Catalyzed One-Step Access to Pyroquilon and C-7 Alkenylation of Indoline with Activated Alkenes Using Weakly Coordinating Functional Groups. The Journal of Organic Chemistry 85:8, pages 5330-5341.
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Navjeet Kaur. 2020. Metal and Nonmetal Assisted Synthesis of Six-Membered Heterocycles. Metal and Nonmetal Assisted Synthesis of Six-Membered Heterocycles 1 64 .
Jodieh Oliveira Santana Varejão, Eduardo Vinícius Vieira Varejão & Sergio Antonio Fernandes. (2019) Synthesis and Derivatization of Julolidine: A Powerful Heterocyclic Structure. European Journal of Organic Chemistry 2019:27, pages 4273-4310.
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Yuanhai Zhong, Taigang Zhou, Zhuohua Zhang & Ruiqing Chang. (2019) Copper-Catalyzed Transfer Hydrogenation of N-Heteroaromatics with an Oxazaborolidine Complex. ACS Omega 4:5, pages 8487-8494.
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Dahyeon Jung, Seol Heui Jang, Taeeun Yim & Jinho Kim. (2018) Oxidation Potential Tunable Organic Molecules and Their Catalytic Application to Aerobic Dehydrogenation of Tetrahydroquinolines. Organic Letters 20:20, pages 6436-6439.
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Dahyeon Jung, Min Hye Kim & Jinho Kim. (2016) Cu-Catalyzed Aerobic Oxidation of Di- tert -butyl Hydrazodicarboxylate to Di- tert -butyl Azodicarboxylate and Its Application on Dehydrogenation of 1,2,3,4-Tetrahydroquinolines under Mild Conditions . Organic Letters 18:24, pages 6300-6303.
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Sudipta Ponra & K. C. Majumdar. (2016) Brønsted acid-promoted synthesis of common heterocycles and related bio-active and functional molecules. RSC Adv. 6:44, pages 37784-37922.
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Renata K. Everett & John P. Wolfe. (2015) Aza-Wittig Rearrangements of N -Benzyl and N -Allyl Glycine Methyl Esters. Discovery of a Surprising Cascade Aza-Wittig Rearrangement/Hydroboration Reaction . The Journal of Organic Chemistry 80:18, pages 9041-9056.
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Hye Ran Moon, Jin Yu, Ko Hoon Kim & Jae Nyoung Kim. (2015) Synthesis of Pyrazolo[1,5- a ]quinolines from 1-Aryl-5-styrylpyrazoles via Intramolecular Friedel-Crafts Reaction/Aerobic Oxidation . Bulletin of the Korean Chemical Society 36:4, pages 1189-1195.
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Ramasamy Manoharan & Masilamani Jeganmohan. (2015) Ruthenium-catalyzed cyclization of N-carbamoyl indolines with alkynes: an efficient route to pyrroloquinolinones. Organic & Biomolecular Chemistry 13:35, pages 9276-9284.
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Xiao-Ming Ji, Shu-Juan Zhou, Chen-Liang Deng, Fan Chen & Ri-Yuan Tang. (2014) NH 4 PF 6 -promoted cyclodehydration of α-amino carbonyl compounds: efficient synthesis of pyrrolo[3,2,1-ij]quinoline and indole derivatives . RSC Adv. 4:96, pages 53837-53841.
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Dadasaheb V. Patil, Marchello A. Cavitt, Paul Grzybowski & Stefan France. (2012) A general intramolecular Friedel–Crafts approach to functionalized pyrrolo[3,2,1-ij]quinolin-4-ones. Chemical Communications 48:83, pages 10337.
Crossref
V. S. Prasada Rao Lingam, Abraham Thomas, Khagga Mukkanti & Balasubramanian Gopalan. (2011) ChemInform Abstract: Simple and Convenient Approach for Synthesis of Tetrahydroquinoline Derivatives and Studies on Aza‐Cope Rearrangement.. ChemInform 42:44.
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