Jiangxi Key Laboratory of Organic Chemistry, Jiangxi Science and Technology Normal University, Nanchang 330013, China.
Molecules. 2022 Oct 31;27(21):7386. doi: 10.3390/molecules27217386.
In the past decade, selenocyclization has been extensively exploited for the preparation of a wide range of selenylated heterocycles with versatile activities. Previously, selenium electrophile-based and FeCl-promoted methods were employed for the synthesis of selenylated benzoxazines. However, these methods are limited by starting material availability and low atomic economy, respectively. Inspired by the recent catalytic selenocyclization approaches based on distinctive pathways, we rationally constructed an efficient and greener double-redox catalytic system for the access to diverse selenylated benzoxazines. The coupling of I/I and Fe/Fe catalytic redox cycles enables aerial O to act as the driving force to promote the selenocyclization. Control and test redox experiments confirmed the roles of each component in the catalytic system, and a PhSeI-based pathway is proposed for the selenocyclization process.
在过去的十年中,硒环化已被广泛用于制备具有多种活性的各种硒代杂环化合物。此前,硒亲电试剂和 FeCl 促进的方法被用于合成硒代苯并恶嗪。然而,这些方法分别受到起始材料可用性和低原子经济性的限制。受最近基于独特途径的催化硒环化方法的启发,我们合理构建了一种高效、环保的双氧化还原催化体系,以获得各种硒代苯并恶嗪。I/I 和 Fe/Fe 催化氧化还原循环的偶联使空气中的 O 作为驱动力来促进硒环化。控制和测试氧化还原实验证实了催化体系中每个组分的作用,并且提出了基于 PhSeI 的途径用于硒环化过程。