College of Material, Chemistry and Chemical Engineering, Key Laboratory of Organosilicon Chemistry and Material Technology, Ministry of Education, Hangzhou Normal University, Hangzhou, Zhejiang 311121, People's Republic of China.
J Org Chem. 2022 Apr 15;87(8):5287-5295. doi: 10.1021/acs.joc.2c00081. Epub 2022 Mar 25.
Because of their unique properties and high biological activities, organophosphorus compounds have been used worldwide in agricultural, industrial, medicinal, and veterinary applications. Conventional strategies for direct phosphonylation suffer from the usage of stoichiometric or excessive metallic or nonmetallic catalysts and long reaction times under harsh conditions, leading to a strong desire for environment-friendly protocols for phosphonylation. A protocol for the accelerated phosphonylation of -phenyltetrahydroisoquinolines in minutes was developed without the use of any catalyst in microdroplets. The phosphonylation process was completed (>85% yields) in 10 min at 40 °C using 0.8 equiv 2,3-dicyano-5,6-dichlorobenzoquinone as the oxidant and acetonitrile as the solvent. The microdroplet phosphonylation strategy showed good suitability to alkyl phosphites and -phenyltetrahydroisoquinolines bearing electron-withdrawing and electron-donating substitutes, and the yields of the microdroplet reaction were much greater than those of the bulk (accelerated by two orders of magnitude from the ratio of the rate constants using the microdroplet and the bulk method). Furthermore, microdroplet phosphonylation can be scaled up to a 1-phenyl-2-dimethylphosphonite-1,2,3,4-tetrahydroisoquinoline amount of 510 mg h by spraying 0.1 mol L -phenyltetrahydroisoquinoline at 300 μL min. These figures of merit make it a promising alternative to classic organic methodologies for the synthesis of organophosphorus compounds.
由于其独特的性质和高生物活性,有机磷化合物已在农业、工业、医药和兽医应用中在全球范围内使用。直接膦酰化的常规策略受到使用化学计量或过量的金属或非金属催化剂以及在苛刻条件下的长反应时间的限制,因此强烈需要用于膦酰化的环保协议。在微滴中开发了一种无需使用任何催化剂即可在数分钟内加速 -苯四氢异喹啉膦酰化的方案。在 40°C 下,使用 0.8 当量的 2,3-二氰基-5,6-二氯苯醌作为氧化剂和乙腈作为溶剂,10 分钟内即可完成膦酰化过程(>85%产率)。微滴膦酰化策略对烷基膦酸酯和带有吸电子和供电子取代基的 -苯四氢异喹啉具有良好的适用性,微滴反应的产率远高于本体反应(使用微滴和本体方法的速率常数之比加速两个数量级)。此外,微滴膦酰化可以通过以 300 μL min 的速度喷涂 0.1 mol L -苯四氢异喹啉将规模扩大到 510 mg h 的 1-苯基-2-二甲基膦酰基-1,2,3,4-四氢异喹啉。这些优点使其成为合成有机磷化合物的经典有机方法的有前途的替代方法。