Leibniz-Forschungsinstitut für Molekulare Pharmakologie (FMP), Robert-Rössle-Strasse 10, Berlin, 13125, Germany.
Department of Chemistry, Humboldt Universität zu Berlin, Brook-Taylor-Str.2, Berlin, 12489, Germany.
Chemistry. 2023 Jun 13;29(33):e202300806. doi: 10.1002/chem.202300806. Epub 2023 Apr 27.
By exploiting the unique reactivity of ethynyl-phosphonites we obtain novel P(V)-containing five-membered heterocycles via (3+2)-cyclization reactions with aldehydes or cycloaliphatic thioketones in satisfactory to excellent yields. Whereas reactions with thioketones to yield 1,3-thiaphospholes-3-oxides occur smoothly at room temperature with equimolar amounts of the starting materials in absence of any catalyst, the analogous conversions with aldehydes to generate 3-oxides of 1,3-oxaphospholes require addition of triethylamine as a base. We postulate a step-wise (3+2)-cyclization mechanism for the formation of the 1,3-thiaphosphole ring based on DFT quantum chemical calculations. With this study, we introduce new cyclization reactions originating from unsaturated phosphonites as central synthetic building blocks to yield previously inaccessible stable phosphorus-containing heterocycles with unexplored potential for the molecular sciences.
利用炔基膦的独特反应性,我们通过与醛或脂环硫酮的(3+2)-环化反应,以令人满意至优异的收率得到了新型含 P(V) 的五元杂环。然而,与硫酮反应以等摩尔量的起始原料在无任何催化剂的情况下在室温下顺利地生成 1,3-硫代磷杂环戊烷-3-氧化物,而类似地与醛反应生成 1,3-氧磷杂环戊烷的 3-氧化物则需要添加三乙胺作为碱。我们基于 DFT 量子化学计算提出了 1,3-硫代磷杂环戊烷环形成的分步(3+2)-环化机制。通过这项研究,我们引入了源自不饱和膦的新环化反应,作为中心合成构建块,生成以前无法获得的具有未知分子科学潜力的稳定含磷杂环。