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Mechanism and free energy profile of base-catalyzed Knoevenagel condensation reaction

机译:基催化KNOEVENAGGEL缩合反应的机理和自由能曲线

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The Knoevenagel condensation reaction is a classical method for carbon–carbon bond formation. This reaction can be catalyzed by homogeneous or heterogeneous bases, and in the past ten years many different solid bases catalysts have been investigated. In this report, we have done a reliable theoretical analysis of the reaction mechanism and free energy profile of acetylacetone reaction with benzaldehyde catalyzed by methoxide ion in methanol solution. The analysis was extended for solventless conditions and solid base catalysis. We have found that the enolate addition to the benzaldehyde is a rapid step, contrary to general assumptions on the mechanism. The rate-determining step is the leaving of the hydroxide ion from the anionic intermediate, with a predicted overall free energy barrier of 28.8 kcal mol ~(?1) . This finding explains the experimental observation that more polar medium favor the reaction, once the transition state is product-like and involves the formation of the highly solvated hydroxide ion. The present results provides useful insights on this reaction system.
机译:Knoevenagel缩合反应是碳 - 碳键形成的经典方法。该反应可以通过均相或异质碱催化,并且在过去十年中已经研究了许多不同的固体碱基催化剂。在本报告中,我们对甲醇离子催化甲醇离子催化的乙酰丙酮反应的反应机理和自由能曲线进行了可靠的理论分析。偏离溶剂条件和固体碱性催化的分析延长。我们发现苯甲醛的烯醇添加是一种快速步骤,与机制的一般假设相反。速率确定步骤是从阴离子中间体的离去氢氧化物离子,预测的总体自由能屏障为28.8kcal mol〜(α1)。该发现解释了一种实验观察,一旦过渡状态是产物样品,就更加极性介质有利于反应的实验观察结果,并且涉及形成高溶剂化的氢氧化物离子。本结果为该反应系统提供了有用的见解。

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