National Engineering Research Center of Chiral Drugs and Key Laboratory of Asymmetric Synthesis & Chirotechnology of Sichuan Province, Chengdu Institute of Organic Chemistry, Chinese Academy of Sciences, Chengdu 610041, China.
J Org Chem. 2010 May 7;75(9):2981-8. doi: 10.1021/jo100256t.
Although a notable feature of Noyori's Ru-TsDPEN complex is that the transfer hydrogenation reaction is highly chemoselective for the C=O functional group and tolerant of alkenes, our early report indicated that the chemoselectivity could be switched from C=O to C=C bonds in the transfer hydrogenation of activated alpha,beta-unsaturated ketones. Now we have found that a variety of alpha,beta-unsaturated ketones, even without other electron-withdrawing functional groups, could be reduced on the alkenic double bonds with high selectivities employing amido-rhodium hydride complex in aqueous media, and up to 100% chemoselectivity has been achieved. It is notable that the chemoselectivity was improved significantly on going from organic solvent to water. Moreover, a 1,4-addition mechanism has been proposed on the basis of the corresponding experimental details and computational analysis.
虽然 Noyori 的 Ru-TsDPEN 配合物的一个显著特点是转移氢化反应对 C=O 官能团具有高度的化学选择性并且对烯烃具有耐受性,但我们的早期报告表明,在活化的α,β-不饱和酮的转移氢化中,化学选择性可以从 C=O 切换到 C=C 键。现在我们已经发现,即使没有其他吸电子官能团,各种α,β-不饱和酮也可以在水相中的酰胺-铑氢化物配合物的存在下,以高选择性还原到烯键上,并且达到了 100%的化学选择性。值得注意的是,从有机溶剂到水相,化学选择性得到了显著提高。此外,根据相应的实验细节和计算分析,提出了 1,4-加成机理。