一个级联中的因果关系:分子内子循环添加的选择性的起源
Elizabeth H Krenske1, Sesil Agopcan, Viktorya Aviyente
1School of Chemistry, University of Melbourne, VIC 3010, Australia. ekrenske@unimelb.edu.au
Journal of the American Chemical Society
|July 14, 2012
概括
密度函数理论的计算揭示了控制 bis ((cyanoalkenyl) oxime反应选择性的因素. 动力学和热力学控制都至关重要,因为在菌毒素合成方面发现了一种新的竞争机制.
科学领域:
- 有机化学 有机化学
- 计算化学的计算化学
背景情况:
- 级联反应提供了高效的合成路径.
- 控制选择性 (化疗,区域,立体选择性) 对于复杂分子合成至关重要.
- 循环添加是合成自然产品 (如胺毒素) 的关键步骤.
研究的目的:
- 阐明了控制二氧化 (cyanoalkenyl) 氧化物的级联反应中的选择性因素.
- 了解动力学和热力学控制在各种条件下的相互作用.
- 为了确定潜在的替代反应途径.
主要方法:
- 使用多个函数的密度函数理论 (DFT) 计算.
- 使用扭曲/相互作用模型分析过渡状态.
- 与已确定的反应机制进行比较.
主要成果:
- 确定了控制化疗,区域和立体选择性的关键因素.
- 证明了动力和热力学控制的重要作用.
- 揭示了动力控制主要由过渡状态中的循环添加曲调节.
- 发现了一种与菌毒素合成相关的新型竞争机制.
结论:
- 双基氧化物级联反应的选择性可以通过DFT预测.
- 了解过渡状态动态对于控制反应结果至关重要.
- 一个新的机制性途径提供了替代合成策略.
相关概念视频
Cycloaddition Reactions: Overview
Cycloadditions are one of the most valuable and effective synthesis routes to form cyclic compounds. These are concerted pericyclic reactions between two unsaturated compounds resulting in a cyclic product with two new σ bonds formed at the expense of π bonds. The [4 + 2] cycloaddition, known as the Diels–Alder reaction, is the most common. The other example is a [2 + 2] cycloaddition.
Cycloaddition Reactions: MO Requirements for Thermal Activation
Thermal cycloadditions are reactions where the source of activation energy needed to initiate the reaction is provided in the form of heat. A typical example of a thermally-allowed cycloaddition is the Diels–Alder reaction, which is a [4 + 2] cycloaddition. In contrast, a [2 + 2] cycloaddition is thermally forbidden.
Radical Reactivity: Intramolecular vs Intermolecular
Radical reactions can occur either intermolecularly or intramolecularly. In an intermolecular radical reaction, a nucleophilic radical adds to an electrophilic alkene or vice versa. In such reactions, the radical and generally the alkene, which is also called the radical trap, are two different molecules. Additionally, for such intermolecular reactions to occur, the radical trap must be active, present in an excess concentration, and the radical starting material must have a weak carbon–halogen...
Nucleophilic Addition to the Carbonyl Group: General Mechanism
The carbonyl carbon in an aldehyde or ketone is the site of a nucleophilic attack due to its electron-deficient nature. Depending on the strength of the incoming nucleophile, the reaction occurs via different mechanistic pathways.
A stronger nucleophile can directly attack the electrophilic center, the carbonyl carbon. The HOMO orbital of the nucleophile interacts with the LUMO (π* antibonding) orbital present on the carbonyl carbon. This interaction breaks the π bond and shifts the π bonding...
A stronger nucleophile can directly attack the electrophilic center, the carbonyl carbon. The HOMO orbital of the nucleophile interacts with the LUMO (π* antibonding) orbital present on the carbonyl carbon. This interaction breaks the π bond and shifts the π bonding...
Nucleophilic Aromatic Substitution: Addition–Elimination (SNAr)
Nucleophilic substitution in aromatic compounds is feasible in substrates bearing strong electron-withdrawing substituents positioned ortho or para to the leaving group. The reaction proceeds via two steps: the addition of the nucleophile and the elimination of the leaving group.
The reaction begins with an attack of the nucleophile on the carbon that holds the leaving group. This results in the delocalization of the π electrons over the ring carbons. The resonance interaction between the...
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α,β-Unsaturated carbonyl compounds with two electrophilic sites, the carbonyl carbon, and the β carbon, are susceptible to nucleophilic attack via two modes: conjugate or 1,4-addition and direct or 1,2-addition.
Conjugate addition results in a thermodynamically stable product. The reaction retains the stronger C=O bond at the expense of the weaker C=C π bond. The process is slow as the β carbon is less electrophilic than the carbonyl carbon.
Direct addition products are formed faster owing to...
Conjugate addition results in a thermodynamically stable product. The reaction retains the stronger C=O bond at the expense of the weaker C=C π bond. The process is slow as the β carbon is less electrophilic than the carbonyl carbon.
Direct addition products are formed faster owing to...

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