催化对氧化物转化为烯的选择性转化
Saihu Liao1, Markus Leutzsch1, Mattia Riccardo Monaco1
1Max-Planck-Institut für Kohlenforschung , Kaiser-Wilhelm-Platz 1, 45470 Mülheim an der Ruhr, Germany.
Journal of the American Chemical Society
|April 13, 2016
概括
一种新型的布伦斯特德酸催化剂有效地将环氧化物转化为高产率和纯度的烯. 这种方法利用动态分辨率和非常低的催化剂负载,防止通过异质聚合物形成的分解.
科学领域:
- 有机化学
- 催化剂
- 不对称的合成
背景情况:
- 在有机合成中,氧化物转化为硫是至关重要的.
- 开发对这种转换的选择性方法仍然是一个挑战.
- 催化剂的稳定性和负载是实际应用的关键因素.
研究的目的:
- 开发一种高效和选择性催化方法,用于将环氧化物转化为化物.
- 使用布伦斯特德酸催化剂实现环氧化物的运动分辨率.
- 为了最大限度地减少催化剂的分解,并使催化剂负载极低.
主要方法:
- 用了一种新的 Brønsted 酸催化剂进行环氧化转化.
- 使用动态分辨率来分离等离子体.
- 研究了催化剂-供体相互作用以防止分解.
主要成果:
- 实现了环氧化物的高效和选择性转化为硫.
- 获得高产量的环氧化物和化物产品,并且具有化纯度.
- 由于有效的稳定,已证明催化剂负荷低至0.01mol%.
结论:
- 已经建立了一个强大的和高度选择性的布伦斯特酸催化方法,用于环氧化物转化为烯.
- 开发的策略有效地防止了催化剂的分解,从而实现了前所未有的低催化剂负载.
- 这项工作在不对称合成和催化效率方面取得了重大进展.
相关概念视频
Preparation of Epoxides
9.7K
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...
9.7K
Sharpless Epoxidation
5.3K
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...
5.3K
Acid-Catalyzed Ring-Opening of Epoxides
9.7K
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...
9.7K
Base-Catalyzed Ring-Opening of Epoxides
11.0K
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...
11.0K
Oxidation of Alkenes: Anti Dihydroxylation with Peroxy Acids
7.9K
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.
7.9K
Hydroboration-Oxidation of Alkenes
12.1K
In addition to the oxymercuration–demercuration method, which converts the alkenes to alcohols with Markovnikov orientation, a complementary hydroboration-oxidation method yields the anti-Markovnikov product. The hydroboration reaction, discovered in 1959 by H.C. Brown, involves the addition of a B–H bond of borane to an alkene giving an organoborane intermediate. The oxidation of this intermediate with basic hydrogen peroxide forms an alcohol.
12.1K


