醇中olefin环氧化显著加快:多个h键网络激活过氧化
Albrecht Berkessel1, Jens A Adrio
1Institut für Organische Chemie, Universität zu Köln, Greinstrasse 4, D-50939 Köln, Germany. berkessel@uni-koeln.de
Journal of the American Chemical Society
|October 13, 2006
概括
1,1,1,3,3,3-hexafluoro-2-propanol (HFIP) 极大地加速了过氧化对的氧化. 这种速度增强是由于高度排序的溶剂聚合物,这是动力学和理论研究证实的.
科学领域:
- 有机化学 有机化学
- 物理化学 物理化学
- 计算化学计算化学
背景情况:
- 奥莱芬环氧化是有机合成中的关键转化.
- 溶剂的影响可以显著影响反应速率和机制.
- 1,1,1,3,3,3-二醇 (HFIP) 以其独特的溶剂特性而闻名.
研究的目的:
- 阐明HFIP中olefin环氧化速度急剧加速的机制基础.
- 为了研究HFIP溶剂聚合物的作用在反应动力学.
- 将实验结果与理论预测进行比较.
主要方法:
- 使用Z-cyclooctene环氧化的动力学研究.
- 激活参数的确定 ().
- 聚氧化机制的密度函数理论 (DFT) 和MP2模拟.
主要成果:
- 与1,4-二氧化相比,HFIP可以将烯酸环氧化加速高达10万倍.
- 动力分析表明HFIP的速率顺序大约为3,这表明更高阶的溶剂聚合物.
- 激活参数显示了一个高度有序的过渡状态.
- DFT模拟显示,随着HFIP协调的增加,激活障碍减少.
- 氧气转移被确定为一个极端协调的过程.
结论:
- 高级HFIP聚合物是导致烯酸环氧化速度显著加快的原因.
- 反应通过极相协调机制进行.
- 机械模型得到了实验和计算结果之间的优秀一致的支持.
相关概念视频
Oxidation of Alkenes: Syn Dihydroxylation with Potassium Permanganate
Alkenes can be dihydroxylated using potassium permanganate. The method encompasses the reaction of an alkene with a cold, dilute solution of potassium permanganate under basic conditions to form a cis-diol along with a brown precipitate of manganese dioxide.
Oxidation of Alkenes: Anti Dihydroxylation with Peroxy Acids
Diols are compounds with two hydroxyl groups. In addition to syn dihydroxylation, diols can also be synthesized through the process of anti dihydroxylation. The process involves treating an alkene with a peroxycarboxylic acid to form an epoxide. Epoxides are highly strained three-membered rings with oxygen and two carbons occupying the corners of an equilateral triangle. This step is followed by ring-opening of the epoxide in the presence of an aqueous acid to give a trans diol.
Oxidative Cleavage of Alkenes: Ozonolysis
In ozonolysis, ozone is used to cleave a carbon–carbon double bond to form aldehydes and ketones, or carboxylic acids, depending on the work-up.
Ozone is a symmetrical bent molecule stabilized by a resonance structure.
Ozone is a symmetrical bent molecule stabilized by a resonance structure.
Acid-Catalyzed α-Halogenation of Aldehydes and Ketones
By replacing an α-hydrogen with a halogen, acid-catalyzed α-halogenation of aldehydes or ketones yields a monohalogenated product
In the first step of the mechanism, the acid protonates the carbonyl oxygen resulting in a resonance-stabilized cation, which subsequently loses an α-hydrogen to form an enol tautomer. The C=C bond in an enol is highly nucleophilic because of the electron-donating nature of the –OH group. Consequently, the double bond attacks an electrophilic halogen to form a...
In the first step of the mechanism, the acid protonates the carbonyl oxygen resulting in a resonance-stabilized cation, which subsequently loses an α-hydrogen to form an enol tautomer. The C=C bond in an enol is highly nucleophilic because of the electron-donating nature of the –OH group. Consequently, the double bond attacks an electrophilic halogen to form a...
ortho–para-Directing Activators: –CH3, –OH, –⁠NH2, –OCH3
All ortho–para directors, excluding halogens, are activating groups. These groups donate electrons to the ring, making the ring carbons electron-rich. Consequently, the reactivity of the aromatic ring towards electrophilic substitution increases. For instance, the nitration of anisole is about 10,000 times faster than the nitration of benzene. The electron-donating effect of the methoxy group in anisole activates the ortho and para positions on the ring and stabilizes the corresponding...
meta-Directing Deactivators: –NO2, –CN, –CHO, –⁠CO2R, –COR, –CO2H
All meta-directing substituents are deactivating groups. These substituents withdraw electrons from the aromatic ring, making the ring less reactive toward electrophilic substitution. For example, the nitration of nitrobenzene is 100,000 times slower than that of benzene because of the deactivating effect of the nitro group. The first step in an electrophilic aromatic substitution is the addition of an electrophile to form a resonance-stabilized carbocation. The energy diagrams for the...


