为什么铜在烯环氧化中本质上比白银更有选择性:乙烯氧化在Cu{11}上与Ag{11}相比
Daniel Torres1, Nuria Lopez, Francesc Illas
1Departament de Quimica Fisica and CeRQT, Universitat de Barcelona and Parc Cientific de Barcelona, c/Marti i Franques 1, 08028 Barcelona, Spain.
Journal of the American Chemical Society
|August 4, 2005
概括
铜 (Cu) 催化剂对烯环氧化比银 (Ag) 催化剂更有选择性,这是由于激活能量障碍的差异. 这一发现为设计更高效的环氧化物生产催化工艺提供了洞察力.
科学领域:
- 不同质的催化剂.
- 表面科学是一门科学.
- 计算化学是一种计算化学.
背景情况:
- 烯环氧化对于生产有价值的化学品至关重要.
- 银 (Ag) 催化剂主导着工业乙烯环氧化.
- 铜 (Cu) 在实验室研究中对各种烯具有更高的选择性.
研究的目的:
- 研究Cu和Ag催化剂在烯环氧化中的内在选择性差异.
- 阐明Cu与Ag相比具有较高的选择性背后的根本原因.
- 在理论层面上了解反应机制.
主要方法:
- 密度函数理论 (DFT) 的计算.
- 对竞争反应通路的激活能量障碍的分析.
- 过渡状态分析.
主要成果:
- 确定了激活障碍的逆转作为选择性差异的关键因素.
- 在Cu上,环氧化物形成的激活障碍低于乙甲形成.
- 在Ag上,乙甲基的形成具有比环氧化物形成更低的激活屏障.
结论:
- 不同的过渡状态特征 (为Cu晚,为Ag早) 解释了观察到的选择性.
- 与Ag相比,Cu的内在选择性优势是由于环氧化物形成的更有利的能量途径.
- 这些发现为开发用于选择性烯环氧化改进的催化剂提供了理论基础.
相关概念视频
Oxidation of Alkenes: Syn Dihydroxylation with Osmium Tetraoxide
Alkenes are converted to 1,2-diols or glycols through a process called dihydroxylation. It involves the addition of two hydroxyl groups across the double bond with two different stereochemical approaches, namely anti and syn. Dihydroxylation using osmium tetroxide progresses with syn stereochemistry.
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...
Extraction: Advanced Methods
Metal ions can be separated from one another by complexation with organic ligands–the chelating agent– to form uncharged chelates. Here, the chelating agent must contain hydrophobic groups and behave as a weak acid, losing a proton to bind with the metal. Since most organic ligands used in this process are insoluble or undergo oxidation in the aqueous phase, the chelating agent is initially added to the organic phase and extracted into the aqueous phase. The metal-ligand complex is formed in...


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