Institute of Pharmaceutical Chemistry, University of Szeged, H-6720 Szeged, Eötvös u. 6, Hungary.
Chem Asian J. 2013 Apr;8(4):800-8. doi: 10.1002/asia.201201125. Epub 2013 Feb 12.
A safe and efficient flow-chemistry-based procedure is presented for 1,3-dipolar cycloaddition reactions between organic azides and acetylenes. This simple and inexpensive technique eliminates the need for costly special apparatus and utilizes Cu powder as a plausible Cu(I) source. To maximize the reaction rates, high-pressure/high-temperature conditions are utilized; alternatively, the harsh reaction conditions can be moderated at room temperature by the joint application of basic and acidic additives. A comparison of the performance of these two approaches in a series of model reactions has resulted in the formation of useful 1,4-disubstituted 1,2,3-triazoles in excellent yields. The risks that are associated with the handling of azides are lowered, thanks to the benefits of flow processing, and gram-scale production has been safely implemented. The synthetic capability of this continuous-flow technique is demonstrated by the efficient syntheses of some highly functionalized derivatives of the antifungal cispentacin.
本文提出了一种安全、高效的基于流动化学的有机叠氮化物和炔烃 1,3-偶极环加成反应的方法。这种简单且廉价的技术消除了对昂贵特殊设备的需求,并利用 Cu 粉作为合理的 Cu(I)源。为了最大限度地提高反应速率,采用了高压/高温条件;或者,通过联合使用碱性和酸性添加剂,可以在室温下缓和苛刻的反应条件。在一系列模型反应中比较这两种方法的性能,得到了高产率的有用的 1,4-取代的 1,2,3-三唑。由于流动处理的优势,降低了与处理叠氮化物相关的风险,并且已经安全地实现了克级生产。这种连续流动技术的合成能力通过高效合成抗真菌药物 cispenctacin 的一些高度官能化衍生物得到了证明。