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Radical Reactivity: Steric Effects01:10

Radical Reactivity: Steric Effects

2.4K
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...
2.4K
Radical Reactivity: Overview01:11

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: Intramolecular vs Intermolecular01:33

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 Effects01:20

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 Radicals01:16

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
Measuring Reaction Rates03:09

Measuring Reaction Rates

28.5K
Polarimetry finds application in chemical kinetics to measure the concentration and reaction kinetics of optically active substances during a chemical reaction. Optically active substances have the capability of rotating the plane of polarization of linearly polarized light passing through them—a feature called optical rotation. Optical activity is attributed to the molecular structure of substances. Normal monochromatic light is unpolarized and possesses oscillations of the electrical...
28.5K

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相关实验视频

Updated: Jan 8, 2026

Free Radicals in Chemical Biology: from Chemical Behavior to Biomarker Development
14:22

Free Radicals in Chemical Biology: from Chemical Behavior to Biomarker Development

Published on: April 15, 2013

20.7K

激进时钟基质测量细胞染色体P450介导的C-H功能反应中的非统计动态效应

Jyothish Joy1, Daniel H Ess1

  • 1Department of Chemistry and Biochemistry, Brigham Young University, Provo, Utah 84604, United States.

Journal of the American Chemical Society
|December 18, 2025
PubMed
概括

动态效应,而不仅仅是重排速率,控制细胞P450时钟反应. 这项研究揭示了非统计动力学和碳化途径解释了产品选择性,解决了基质化学中的长期团.

科学领域:

  • 生物化学
  • 化学动力学
  • 计算化学

背景情况:

  • 细胞P450酶通过中间基激活C-H键.
  • 激进时钟基板探测中间寿命,但选择性数据与重新排列率缺乏相关性.

研究的目的:

  • 阐明控制P450基钟反应中的产品选择性的因素.
  • 解决实验选择性和理论预测之间的差异.

主要方法:

  • 一开始直接动力学模拟.
  • 对动态 (势头) 非统计效应的分析.
  • 碳化与基质中间路径的研究.

主要成果:

  • 动态非统计效应, 不仅仅是重新排列率,
  • 解释了U/R选择性和基质重组率之间缺乏相关性.
  • 在某些时钟反应中识别碳酸中间体,受电离能和C-C键延长的影响.

结论:

  • P450时钟反应的结果取决于动态效应和非统计途径分支.
  • 只有过渡状态理论不足以解释时钟反应结果.

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  • 将双态反应与动态效应结合起来,对于理解P450时钟实验至关重要.