洞穴中的激进反应揭示了亲和力对动态超分子系统的影响
Manuel Petroselli1,2, Venkatachalam Angamuthu1, Faiz-Ur Rahman1
1Center for Supramolecular Chemistry & Catalysis and Department of Chemistry, College of Science , Shanghai University , 99 Shang-Da Road , Shanghai 200444 , P. R. China.
Journal of the American Chemical Society
|January 9, 2020
概括
溶于水的容器化合物有助于基化物和芳香物的有氧氧化. 高结合亲和度对于这些动态超分子系统中的反应至关重要.
科学领域:
- 超分子化学
- 有机合成
- 激进化学
背景情况:
- 容器化合物为化学反应提供独特的环境.
- 在狭窄的空间中控制反应是化学的一个关键挑战.
研究的目的:
- 对水溶性容器化合物的使用进行研究.
- 制定用于有机合成的动态超分子系统的指导方针.
主要方法:
- 使用水溶性腔体和宿主 (化合物1和2) 作为容器化合物.
- 使用激素启动器进行各种α,ω-二化物的基性减少.
- 分析产品分布以了解反应机制和限制效应.
主要成果:
- 在容器化合物中成功减少基化物.
- 使用相同的系统展示了基芳合物的有氧氧化.
- 确定了高客基结亲和度 (Ka > 10^3 M^-1) 的关键要求,以有效封闭.
结论:
- 水溶性容器化合物可以有效调解激素反应.
- 动态超分子系统需要高基质亲和力来控制反应性.
- 这些发现为合成应用设计超分子系统提供了指导方针.
相关概念视频
Radical Reactivity: Overview
2.6K
Radicals, the highly reactive species, gain stability by undergoing three different reactions. The first reaction involves a radical-radical coupling, in which a radical combines with another radical, forming a spin‐paired molecule. The second reaction is between a radical and a spin‐paired molecule, generating a new radical and a new spin‐paired molecule. The third reaction is radical decomposition in a unimolecular reaction, forming a new radical and a spin‐paired...
2.6K
Radical Reactivity: Steric Effects
2.3K
The presence of electron-donating, electron-withdrawing, or conjugating groups adjacent to a radical center, imparts electronic stabilization to the radicals. Examples of such electronically-stabilized radicals are triphenylmethyl, tetramethylpiperidine‐N‐oxide, and 2,2‐diphenyl‐1‐picrylhydrazyl. These radicals are remarkably stable and are known as persistent radicals. Some of the persistent radicals can even be isolated and purified.
Along with electronic...
Along with electronic...
2.3K
Radical Reactivity: Intramolecular vs Intermolecular
2.1K
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...
2.1K
Radical Reactivity: Concentration Effects
1.8K
In a radical reaction, the concentration of starting materials governs the selectivity of a radical. For example, the reaction between an alkyl halide and an alkene, in the presence of tin hydride and AIBN, begins with the generation of a tin radical. The generated radical then abstracts halogen from the alkyl halide, producing an alkyl radical. This alkyl radical can either react with tin hydride, yielding an alkane, or add to an alkene, generating a nitrile-stabilized radical, eventually...
1.8K
Radical Reactivity: Nucleophilic Radicals
2.6K
Radicals adjacent to electron-donating groups are called nucleophilic radicals. These radicals readily react with electrophilic alkenes. The SOMO–LUMO interactions are the driving force for the reaction, where the high-energy SOMO of the electron-rich, nucleophilic radicals interacts with the low-energy LUMO of the electron-deficient, electrophilic alkenes. Such SOMO–LUMO interactions are the basis of reactive radical traps, affecting the selectivity in radical reactions. For...
2.6K
Radical Reactivity: Electrophilic Radicals
2.3K
Radicals adjacent to electron‐withdrawing groups are called electrophilic radicals. These radicals readily react with nucleophilic alkenes. For example, the malonate radical, in which the radical center is flanked by two electron‐withdrawing groups, reacts readily with butyl vinyl ether, which consists of an electron‐donating oxygen substituent. The reaction between electrophilic malonate radical and nucleophilic vinyl ether is favored because the radical has a...
2.3K


