Université de Reims Champagne Ardenne, Institut de Chimie Moléculaire de Reims, UMR CNRS N degrees 6229, Equipe de Photochimie, UFR Sciences, B.P. 1039, 51687 Reims, France.
Chemistry. 2010 Mar 15;16(11):3341-54. doi: 10.1002/chem.200903045.
The stereo- and regioselectivity of triplet-sensitised radical reactions of furanone derivatives have been investigated. Furanones 7a,b were excited to the (3)pipi* state by triplet energy transfer from acetone. Intramolecular hydrogen abstraction then occurred such that hydrogen was transferred from the tetrahydropyran to the beta position of the furanone moiety. Radical combination of the tetrahydropyranyl and the oxoallyl radicals led to the final products 8a,b. In the intramolecular reaction, overall, a pyranyl group adds to the alpha position of the furanone. The effect of conformation was first investigated with compounds 9a,b carrying an additional substituent on the tether between the furanone and pyranyl moiety. Further information on the effect of conformation and the relative configuration at the pyranyl anomeric centre and the furanone moiety was obtained from the transformations of the glucose derivatives 12, 14, 17 and 18. Radical abstraction occurred at the anomeric centre and at the 5'-position of the glucosyl moiety. Computational studies of the hydrogen-abstraction step were carried out with model structures. The activation barriers of this step for different stereoisomers and the abstraction at the anomeric centre and at the 6'-position of the tetrahydropyranyl moiety were calculated. The results of this investigation are in accordance with experimental observations. Furthermore, they reveal that the reactivity and regioselectivity are mainly determined in the hydrogen-abstraction step. Intramolecular hydrogen abstraction (almost simultaneous electron and proton transfer) in (3)pipi* excited furanones only takes place under restricted structural conditions in a limited number of conformations that are defined by the relative configuration of the substrates. It is observed that in the biradical intermediate, back-hydrogen transfer occurs leading to the starting compound. In the case of glucose derivatives, this reaction led to epimerisation at the anomeric centre.
已研究了呋喃酮衍生物的三重态敏化自由基反应的立体和区域选择性。呋喃酮 7a,b 通过丙酮的三重态能量转移被激发到 (3)pipi* 态。然后发生分子内氢提取,使得氢从四氢吡喃转移到呋喃酮部分的β位。四氢吡喃基和氧杂丁二烯自由基的自由基复合导致最终产物 8a,b。在分子内反应中,总体上,一个吡喃基基团添加到呋喃酮的α位。首先通过在呋喃酮和吡喃基部分之间的连接带上带有额外取代基的化合物 9a,b 研究构象的影响。通过葡萄糖衍生物 12、14、17 和 18 的转化获得了关于构象影响以及吡喃基端基和呋喃酮部分的相对构型的进一步信息。自由基提取发生在端基和葡糖基部分的 5'-位。使用模型结构进行了氢提取步骤的计算研究。计算了不同立体异构体和在吡喃基端基和四氢吡喃基部分的 6'-位进行的提取的氢提取步骤的活化势垒。这些研究的结果与实验观察结果一致。此外,它们表明反应性和区域选择性主要由氢提取步骤决定。在 (3)pipi* 激发的呋喃酮中,分子内氢提取(几乎同时的电子和质子转移)仅在受限制的结构条件下发生,在这些条件下,只有少数构象可以发生,这些构象由底物的相对构型定义。观察到在双自由基中间体中,发生回氢转移,导致起始化合物。在葡萄糖衍生物的情况下,该反应导致端基的差向异构化。