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对 Morita-Baylis-Hillman 反应的统一机械观点:计算和实验研究。

A unified mechanistic view on the Morita-Baylis-Hillman reaction: computational and experimental investigations.

机构信息

Christian Doppler Laboratory for Microwave Chemistry (CDLMC) and Institute of Chemistry, Karl-Franzens-University Graz, Heinrichstrasse 28, A-8010 Graz, Austria.

出版信息

J Org Chem. 2010 Dec 17;75(24):8615-26. doi: 10.1021/jo102094h. Epub 2010 Nov 17.

Abstract

The thermodynamic properties and reaction mechanism of the Morita-Baylis-Hillman (MBH) reaction have been investigated through experimental and computational techniques. The impossibility to accelerate this synthetically valuable transformation by increasing the reaction temperature has been rationalized by variable-temperature experiments and MP2 theoretical calculations of the reaction thermodynamics. An increase in temperature results in a switching of the equilibrium to the reactants occurring at even moderate temperature levels. The complex reaction mechanism for the MBH reaction has been investigated through an in-depth analysis of the suggested alternative pathways, using the M06-2X computational method. The results provided by this theoretical approach are in agreement with all the experimental/kinetic evidence such as reaction order, acceleration by protic species (methanol, phenol), and autocatalysis. In particular, the existing controversy about the character of the key proton transfer in the MBH reaction (Aggarwal versus McQuade pathways) has been resolved. Depending on the specific reaction conditions both suggested pathways are competing mechanisms, and depending on the amount of protic species and the reaction progress (early or late stage) either of the two mechanisms will be favored.

摘要

通过实验和计算技术研究了 Morita-Baylis-Hillman (MBH) 反应的热力学性质和反应机理。通过变温实验和 MP2 反应热力学理论计算,合理地解释了不能通过提高反应温度来加速这一具有合成价值的转化。温度升高会导致平衡向反应物转移,即使在中等温度下也是如此。通过使用 M06-2X 计算方法对建议的替代途径进行深入分析,研究了 MBH 反应的复杂反应机理。该理论方法提供的结果与所有实验/动力学证据一致,例如反应级数、质子种(甲醇、苯酚)的加速作用和自动催化作用。特别是,MBH 反应中关键质子转移的性质(Aggarwal 与 McQuade 途径)的现有争议得到了解决。根据具体的反应条件,两种建议的途径都是竞争机制,并且取决于质子种的量和反应进展(早期或晚期),两种机制中的任何一种都会受到青睐。

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