Department of Chemistry, The University of Texas at San Antonio , San Antonio, Texas 78249, United States.
J Am Chem Soc. 2017 Jul 26;139(29):9839-9842. doi: 10.1021/jacs.7b05840. Epub 2017 Jul 13.
The first cyclization reactions of enoldiazo compounds with nitrosoarenes have been developed. Under the catalysis of rhodium(II) octanoate, [3 + 2]-cyclization between enoldiazoacetamides and nitrosoarenes occurred through cleavages of the enol double bond and the amide bond, thus furnishing fully substituted 5-isoxazolone derivatives. Upon changing the catalyst to rhodium(II) caprolactamate, the reaction pathway switched to an unprecedented formal [5 + 1]-cyclization that provided multifunctionalized 1,3-oxazin-4-ones with near exclusivity under otherwise identical conditions. Mechanistic studies uncovered distinct catalytic activities and reaction intermediates, which plausibly rationalized the novel reactivity and catalyst-controlled chemodivergence. Furthermore, a mechanism-inspired enantioselective rhodium-catalyzed reaction of γ-substituted enoldiazoacetamide with nitrosobenzene produced highly enantioenriched heterocycle-linked trialkylamine.
烯腙化合物与亚硝基芳烃的首次环化反应已经开发出来。在辛酸铑(II)的催化下,烯腙乙酰胺与亚硝基芳烃通过烯醇双键和酰胺键的断裂发生[3+2]-环化,从而提供完全取代的 5-异噁唑酮衍生物。改变催化剂为己二酸亚乙酯铑(II)后,反应途径切换到一种前所未有的形式[5+1]-环化,在其他相同条件下以近乎排他性提供多功能化的 1,3-噁嗪-4-酮。机理研究揭示了不同的催化活性和反应中间体,合理地解释了新的反应性和催化剂控制的化学发散。此外,受机理启发的γ-取代烯腙乙酰胺与亚硝基苯的对映选择性铑催化反应生成了高度对映富集的杂环连接的三烷基胺。