区域选择性和反选择性环氧化,由金属氨酸催化
J P Collman1, X Zhang, V J Lee
1Department of Chemistry, Stanford University, CA 94305.
概括
金属氨酸催化剂可实现精确的区域选择性和反选择性环氧化. 本次审查涵盖了仿生起源和合成相关性,突出了可系统修改的催化剂系统,以提高性能.
科学领域:
- 有机化学 有机化学
- 催化剂是一种催化剂.
- 生物模拟化学 生物模拟化学
背景情况:
- 金属氨酸在生物氧化过程中至关重要.
- 氧化反应对于合成复杂的有机分子至关重要.
- 生物仿真方法旨在复制自然的催化功能.
研究的目的:
- 审查最近在金属胺催化环氧化中取得的进展.
- 讨论这些催化剂的仿生起源和合成实用性.
- 为了未来的改进,对催化剂开发进行分类和分析.
主要方法:
- 关于区域选择性和反选择性环氧化的文献综述.
- 分析金属氨酸催化剂的结构和修改.
- 基于性能和合成可访问性的催化剂的分类.
主要成果:
- 在使用金属氨酸的区域选择性和酶选择性环氧化中取得了显著进展.
- 来自可系统修改系统的催化剂显示出很大的前景.
- 仿生学和实际应用都受益于这些进步.
结论:
- 金属氨酸催化为选择性环氧化提供了强大的工具.
- 系统的合成改造是开发优质催化剂的关键.
- 这一领域对合成有机化学应用具有重大意义.
相关概念视频
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.
Preparation of Epoxides
Overview
Epoxides result from alkene oxidation, which can be achieved by a) air, b) peroxy acids, c) hypochlorous acids, and d) halohydrin cyclization.
Epoxidation with Peroxy Acids
Epoxidation of alkenes via oxidation with peroxy acids involves the conversion of a carbon–carbon double bond to an epoxide using the oxidizing agent meta-chloroperoxybenzoic acid, commonly known as MCPBA. Since the O–O bond of peroxy acids is very weak, the addition of electrophilic oxygen of peroxy acids to...
Epoxides result from alkene oxidation, which can be achieved by a) air, b) peroxy acids, c) hypochlorous acids, and d) halohydrin cyclization.
Epoxidation with Peroxy Acids
Epoxidation of alkenes via oxidation with peroxy acids involves the conversion of a carbon–carbon double bond to an epoxide using the oxidizing agent meta-chloroperoxybenzoic acid, commonly known as MCPBA. Since the O–O bond of peroxy acids is very weak, the addition of electrophilic oxygen of peroxy acids to...
Sharpless Epoxidation
The conversion of allylic alcohols into epoxides using the chiral catalyst was discovered by K. Barry Sharpless and is known as Sharpless epoxidation. The use of a chiral catalyst enables the formation of one enantiomer of the product in excess. This chiral catalyst is mainly a chiral complex of titanium tetraisopropoxide and tartrate ester (specific stereoisomer). The stereoisomer used in the chiral catalyst dictates the formation of the enantiomer of the product. In other words, the use of...
Acid-Catalyzed Ring-Opening of Epoxides
Epoxides that are three-membered ring systems are more reactive than other cyclic and acyclic ethers. The high reactivity of epoxides originates from the strain present in the ring. This ring strain acts as a driving force for epoxides to undergo ring-opening reactions either with halogen acids or weak nucleophiles in the presence of mild acid. The acid catalyst converts the epoxide oxygen, a poor leaving group, into an oxonium ion, a better leaving group, making the reaction feasible. The...
Base-Catalyzed Ring-Opening of Epoxides
Due to their highly strained structures, epoxides can readily undergo ring-opening reactions through nucleophilic substitution, either in the presence of an acid or a base. The nucleophilic substitution reactions in the presence of acid are called acid-catalyzed ring-opening reactions, and nucleophilic substitution reactions in the presence of a base are called base-catalyzed ring-opening reactions. Epoxides undergo base-catalyzed ring-opening reactions in the presence of a strong nucleophile...
Regioselective Formation of Enolates
As depicted in the figure below, the unsymmetrical ketones can form two possible enolates: less substituted or more substituted enolates. Usually, the thermodynamic enolates are formed from the more substituted α-carbon atom, while the kinetic enolates are formed faster by deprotonation from the less substituted position. The thermodynamic enolates have lower energy, so they are more stable. But the energy required to form kinetic enolates is less.


