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利用 TEMPO 催化的有氧氧化实现 Machetti-De Sarlo 反应,以可持续的方式合成异恶唑文库。

Harnessing the TEMPO-Catalyzed Aerobic Oxidation for Machetti-De Sarlo Reaction toward Sustainable Synthesis of Isoxazole Libraries.

机构信息

Department of Chemistry , B. S. Abdur Rahman Crescent Institute of Science and Technology , Vandalur , Chennai 600048 , Tamil Nadu , India.

Department of Metallurgical & Materials Engineering , Indian Institute of Technology-Madras (IITM) , Chennai 600036 , Tamil Nadu , India.

出版信息

J Org Chem. 2019 Nov 1;84(21):13636-13645. doi: 10.1021/acs.joc.9b01896. Epub 2019 Oct 7.

Abstract

A practical synthesis of isoxazole/isoxazoline derivatives via Machetti-De Sarlo reaction under sustainable conditions has been accomplished. This protocol involves the use of readily available 2,2,6,6-tetramethylpiperidine--oxyl (TEMPO) to catalyze the cyclocondensation of primary nitroalkanes with alkynes/alkenes to afford a library of isoxazole/isoxazoline products. From an eco-benign perspective, notable advantages of this method are as follows: (i) water as the solvent, (ii) air as the oxidant, (iii) transition metal-free, (iv) no base required, (v) no toxic byproduct, (vi) no need of solvent extraction, (vii) diverse substrate scope, (viii) high chemical yields, (ix) excellent chemo- and regioselectivity, (x) short reaction time, (xi) gram-scale synthesis, (xii) extension to heterogeneous version, and (xiii) catalyst recyclability. For these reasons, the developed method is appropriate for safe laboratory use and can be expected to inspire the progress of TEMPO-based organocatalysis for the preparation of isoxazole/isoxazoline moieties in an environmentally benign fashion.

摘要

通过在可持续条件下的 Machetti-De Sarlo 反应,实现了异恶唑/异恶唑啉衍生物的实用合成。该方案涉及使用易得的 2,2,6,6-四甲基哌啶-1-氧基(TEMPO)来催化伯硝基烷与炔烃/烯烃的环缩合,以提供一系列异恶唑/异恶唑啉产物。从生态友好的角度来看,该方法具有以下显著优点:(i) 水为溶剂,(ii) 空气为氧化剂,(iii) 无过渡金属,(iv) 无需碱,(v) 无有毒副产物,(vi) 无需溶剂萃取,(vii) 底物范围广泛,(viii) 产率高,(ix) 良好的化学和区域选择性,(x) 反应时间短,(xi) 克级规模合成,(xii) 扩展到多相版本,以及(xiii) 催化剂可回收性。由于这些原因,所开发的方法适合安全的实验室使用,并有望激发基于 TEMPO 的有机催化在环境友好的方式下制备异恶唑/异恶唑啉部分的进展。

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