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四丁基溴化铵催化的甲锡烷基酮烯醇化物与α,β-不饱和酯的迈克尔加成反应及反应历程的从头算理论研究

Michael addition of stannyl ketone enolate to alpha,beta-unsaturated esters catalyzed by tetrabutylammonium bromide and an ab initio theoretical study of the reaction course.

作者信息

Yasuda Makoto, Chiba Kouji, Ohigashi Noriyuki, Katoh Yasuhiro, Baba Akio

机构信息

Department of Molecular Chemistry and Handai Frontier Research Center, Graduate School of Engineering, Osaka University, 2-1 Yamadaoka, Suita, Osaka 565-0871, Japan.

出版信息

J Am Chem Soc. 2003 Jun 18;125(24):7291-300. doi: 10.1021/ja028853+.

Abstract

Michael addition of stannyl ketone enolates to alpha,beta-unsaturated esters was accomplished in the presence of a catalytic amount of tetrabutylammonium bromide (Bu(4)NBr). Other typical systems using lithium enolate or silyl enolate with catalysts (TiCl(4) or Bu(4)NF) failed to give the desired products. The bromide anion from Bu(4)NBr coordinates to the tin center in enolate to accelerate the conjugate addition where a five-coordinated tin species was generated. The coordination of the bromide anion significantly raises the HOMO level of tin enolate and enhances its nucleophilicity. The conjugate addition provides the intermediate Michael adduct, which has an ester enolate moiety, and the adduct immediately transforms to alpha-stannyl gamma-ketoester by keto-enol tautomerization. This step contributes to the stabilization of the product system and leads to a thermodynamically favorable reaction course. An ab initio calculation reveals that the activation energy in the reaction using the bromide anion is lower than that of the reaction without using it. The transition state in either reaction course has a linear structure, not a cyclic one. This system can be applied to a variety of tin enolates and alpha,beta-unsaturated carbonyls involving enoates, enones, and unsaturated amides.

摘要

在催化量的四丁基溴化铵(Bu(4)NBr)存在下,实现了甲锡烷基酮烯醇盐对α,β-不饱和酯的迈克尔加成反应。使用烯醇锂或烯醇硅醚与催化剂(TiCl(4)或Bu(4)NF)的其他典型体系未能得到所需产物。Bu(4)NBr中的溴离子与烯醇盐中的锡中心配位,以加速共轭加成反应,在此过程中生成了五配位的锡物种。溴离子的配位显著提高了烯醇锡的最高占据分子轨道(HOMO)能级,并增强了其亲核性。共轭加成反应生成了具有酯烯醇盐部分的中间体迈克尔加合物,该加合物通过酮-烯醇互变异构立即转化为α-甲锡烷基γ-酮酯。这一步有助于产物体系的稳定,并导致热力学上有利的反应过程。从头算计算表明,使用溴离子的反应中的活化能低于不使用溴离子的反应。任一反应过程中的过渡态均具有线性结构,而非环状结构。该体系可应用于多种烯醇锡和α,β-不饱和羰基化合物,包括烯酸酯、烯酮和不饱和酰胺。

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