碳化合物与非激活基的有效的基因介导分子间α-化反应
Yasuhiro Yamashita1, Shū Kobayashi1
1Department of Chemistry, School of Science, The University of Tokyo, Hongo, Bunkyo-ku, Tokyo, Japan, 113-0033.
Chemistry, an Asian journal
|April 27, 2024
概括
本综述探讨了基质介导的化反应,这是形成碳-碳键的关键方法. 它强调了最近在使用非激活基来实现更高效的合成有机化学方面的进展.
科学领域:
- 合成有机化学 合成有机化学
- 有机合成 有机合成
- 催化剂是一种催化剂.
背景情况:
- 化反应对于碳-碳键的形成至关重要.
- 碳基化合物与基之间的分子间α-化为基化物提供了原子经济.
- 从历史上看,与非激活基,如1-基因的反应具有挑战性.
研究的目的:
- 审查碳基化合物与非激活基的基因介导分子间α-化反应.
- 分类和讨论各种方法,包括过氧化物介导,金属氧化剂介导和光活性反应.
- 为了突出光电还原催化反应作为一个重要的近期发展.
主要方法:
- 讨论过氧化物介导的基质化.
- 分析金属氧化剂介导的基质化.
- 在可见光下探索光激活和光氧催化基化.
主要成果:
- 证明了通过非活化基与激素介导的成功分子间α-化.
- 将方法分类为过氧化物,金属氧化剂和光激活方法.
- 确定光氧催化作为未来研究的一个非常有前途的领域.
结论:
- 激素介导反应提供了有效的策略,以挑战碳化合物的α-化与非激活基.
- 光电氧催化剂为这些转变提供了一种尖端和高效的方法.
- 本综述提供了关于利用α-碳基基物种的历史背景和未来观点.
相关概念视频
Radical Anti-Markovnikov Addition to Alkenes: Mechanism
3.7K
The reaction of hydrogen bromide with alkenes in the presence of hydroperoxides or peroxides proceeds via anti-Markovnikov addition. The radical chain reaction comprises initiation, propagation, and termination steps.
The mechanism starts with chain initiation, which involves two steps. In the first chain initiation step, a weak peroxide bond is homolytically cleaved upon mild heating to form two alkoxy radicals. In the second initiation step, a hydrogen atom is abstracted by the alkoxy...
The mechanism starts with chain initiation, which involves two steps. In the first chain initiation step, a weak peroxide bond is homolytically cleaved upon mild heating to form two alkoxy radicals. In the second initiation step, a hydrogen atom is abstracted by the alkoxy...
3.7K
Radical Anti-Markovnikov Addition to Alkenes: Overview
3.4K
The addition of hydrogen bromide to alkenes in the presence of hydroperoxides or peroxides proceeds via an anti-Markovnikov pathway and yields alkyl bromides.
3.4K
Radical Reactivity: Electrophilic Radicals
1.9K
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...
1.9K
α-Alkylation of Ketones via Enolate Ions
3.1K
Ketones with α protons are deprotonated by strong bases like lithium diisopropylamide (LDA) to form enolate ions. The anion is stabilized by resonance, and its hybrid structure exhibits negative charges on the carbonyl oxygen and the α carbon. This ambident nucleophile can attack an electrophile via two possible sites: the carbonyl oxygen, known as O-attack, or the α carbon, known as C-attack. The nucleophilic attack via the carbanionic site is preferred. This is due to the...
3.1K
Alkenes via Reductive Coupling of Aldehydes or Ketones: McMurry Reaction
1.9K
The radical dimerization of ketones or aldehydes gives vicinal diols through a pinacol coupling reaction. However, the behavior of titanium metals used for the reaction as a source of electrons is unusual. When the reaction is carried out in the presence of titanium, diols can be isolated at low temperatures. Else titanium further reacts with diols, forming alkenes through the McMurry reaction.
1.9K
Radical Reactivity: Nucleophilic Radicals
2.1K
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...
2.1K


