乙基醌化学的基本和应用方面

S. Vasilevsky, A. A. Stepanov
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引用次数: 0

摘要

除了已报道的醌类乙炔衍生物的合成路线外,本文还详细分析了这类化合物的基本化学、物理化学和生物学性质。考察了钯和铜催化的末端炔与碘烯通过Sonogashira反应交叉偶联制得具有预定性质的新乙基醌的优点。在这里,结合醌类和乙炔残基到一个分子中,产生的化合物具有化学特异性,正如几个报道的非平凡转化的例子所证明的那样。特别是,类醌循环的存在显著地增加了三键的亲电性,并决定了转化可能性的范围。此外,乙炔基醌对外部因素(如反应温度和溶剂性质)和内部因素(如原子核中取代基的结构和乙炔碎片)都具有较高的敏感性。例如,在没有金属催化剂的情况下,在胺的作用下,强三键的区域选择性切割是可能的。由于邻近乙炔和羰基,邻取代乙炔-9,10-蒽醌最适合于合成路线。介绍了选择性炔基醌的反应机理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
FUNDAMENTAL AND APPLIED ASPECTS OF THE CHEMISTRY OF ACETYLENYLQUINONES
In addition to the reported synthetic routes for the acetylene derivatives of quinones, a detailed analysis of the fundamental chemical, physicochemical, and biological properties of this class of compounds is presented herein. The advantages of Pd- and Cu-catalyzed cross-coupling of terminal alkynes with iodarenes via the Sonogashira reaction to produce new acetylenylquinones with predetermined properties are examined. Here, combining quinoid and acetylene residues into one molecule gives the resulting compounds chemical specificity, as demonstrated by several reported examples of non-trivial transformations. In particular, the presence of the quinoid cycle significantly increases the electrophilicity of the triple bond and determines the range of transformation possibilities. Moreover, acetylenylquinones have heightened sensitivity to both external (such as the reaction temperature and the nature of the solvent) and internal (e.g., the structure of substituents in the nucleus and the acetylene fragment) factors. For example, regioselective cleavage of a strong triple bond under the action of amines is possible in the absence of a metal catalyst. Peri-substituted acetylenyl-9,10-anthraquinones are most suited for the synthetic route because of the proximity of the acetylene and carbonyl groups. Mechanisms of reactions of selective alkynylquinones are described.
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