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通过α-烯丙基二硫酯在室温下的卤化/分子内C(sp)-H噻吩化反应实现区域和化学选择性合成二氢噻吩和噻吩。

Regio- and Chemoselective Access to Dihydrothiophenes and Thiophenes via Halogenation/Intramolecular C(sp)-H Thienation of α-Allyl Dithioesters at Room Temperature.

作者信息

Shukla Gaurav, Raghuvanshi Keshav, Singh Maya Shankar

机构信息

Department of Chemistry, Institute of Science, Banaras Hindu University, Varanasi, Utta Pradesh 221005, India.

Coal to Hydrogen Energy for Sustainable Solutions (CHESS) Research Group, CSIR-Central Institute for Mining and Fuel Research (CSIR-CIMFR), Dhanbad, Jharkhand 828119, India.

出版信息

J Org Chem. 2022 Nov 4;87(21):13935-13944. doi: 10.1021/acs.joc.2c01617. Epub 2022 Oct 7.

Abstract

An operationally simple, practical, and efficient cascade approach employing α-allyl dithioesters and NBS/NIS has been achieved to access a series of dihydrothiophenes and thiophenes containing diverse functional groups of different electronic and steric natures in good to excellent yields at room temperature in open air. The reaction proceeds via the electrophilic addition of a halogen source (NBS/NIS) to an allylic double bond, followed by intramolecular regio- and chemoselective -cyclization. This protocol avoids potential toxicity and tedious work-up conditions, and features easy synthesis from readily available starting materials under catalyst-free conditions. Furthermore, 4,5-dihydrothiophenes were aromatized to thiophenes by treatment with KOH in DMF at room temperature. A probable mechanism for the formation of dihydrothiophenes and thiophenes from α-allyl dithioesters has been suggested. Notably, a large-scale experiment and the transformations of products indicated the potential utility of this reaction compared to competing processes for the synthesis of 4,5-dihydrothiophenes and thiophenes.

摘要

已经实现了一种操作简单、实用且高效的级联方法,该方法使用α-烯丙基二硫酯和NBS/NIS,在室温下于空气中以良好至优异的产率获得了一系列含有不同电子和空间性质的各种官能团的二氢噻吩和噻吩。该反应通过卤素源(NBS/NIS)对烯丙基双键的亲电加成进行,随后进行分子内区域和化学选择性环化。该方案避免了潜在的毒性和繁琐的后处理条件,并且具有在无催化剂条件下由容易获得的起始原料进行简便合成的特点。此外,通过在室温下于DMF中用KOH处理,4,5-二氢噻吩被芳构化为噻吩。已经提出了由α-烯丙基二硫酯形成二氢噻吩和噻吩的可能机理。值得注意的是,大规模实验和产物的转化表明,与用于合成4,5-二氢噻吩和噻吩的竞争方法相比,该反应具有潜在的实用性。

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