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相关概念视频

Radical Substitution: Allylic Bromination01:27

Radical Substitution: Allylic Bromination

5.7K
In organic synthesis, the formation of products can be altered by changing the reaction conditions. For example, a dibromo addition product is formed when propene is treated with bromine at room temperature. In contrast, propene undergoes allylic substitution in non-polar solvents at high temperatures to give 3-bromopropene. In order to avoid the addition reaction, the bromine concentration must be kept as low as possible throughout the reaction. This can be achieved using N-bromosuccinimide...
5.7K
Radical Substitution: Allylic Chlorination01:31

Radical Substitution: Allylic Chlorination

2.6K
Typically, when alkenes react with halogens at low temperatures, an addition reaction occurs. However, upon increasing the temperature or under reaction conditions that form radicals, providing a low but steady concentration of halogen radicals, allylic substitution reaction is favored. This is because allylic hydrogens are very reactive as the formed intermediate is resonance stabilized. For example, when propene is treated with chlorine in the gas phase at 400 °C, it undergoes allylic...
2.6K
π Molecular Orbitals of the Allyl Cation and Anion01:18

π Molecular Orbitals of the Allyl Cation and Anion

4.8K
An allyl group is a three-carbon conjugated system where the sp³-hybridized allylic carbon is bonded to a CH=CH2 group via a single bond. Allyl anions can be obtained by treating propene with a strong base that can deprotonate methyl groups. Allyl cations are formed as intermediates during substitution reactions involving allylic halides. In both cases, the hybridization of the allylic carbon changes from sp3 to sp2, giving rise to a carbon chain with three sp2-hybridized carbons, each with...
4.8K
Preparation of Amines: Alkylation of Ammonia and Amines01:30

Preparation of Amines: Alkylation of Ammonia and Amines

3.8K
Alkylation is one of the methods used to prepare amines. Direct alkylation of ammonia or a primary amine with an alkyl halide gives polyalkylated amines along with a quaternary ammonium salt through successive SN2 reactions. This process of making the quaternary salt through the direct alkylation method is called exhaustive alkylation.
Each alkylation step makes the nitrogen center more nucleophilic, which triggers successive alkylations until a quaternary ammonium salt is formed. Considering...
3.8K
Amines to Alkenes: Hofmann Elimination01:16

Amines to Alkenes: Hofmann Elimination

2.7K
Alkenes can be obtained from amines via an E2 elimination. The amine is first converted into a good leaving group, such as a quaternary ammonium salt. This is accomplished by treating the amine with an excess of alkyl halide, which results in a halide salt. Next, the halide salt is transformed into a hydroxide salt that functions as a base to enable elimination.
Under thermal conditions, the hydroxide can abstract a proton from the β carbon; this generates an alkene with the simultaneous...
2.7K
Amines to Amides: Acylation of Amines01:19

Amines to Amides: Acylation of Amines

2.8K
Various carboxylic acid derivatives (such as acid chlorides, esters, and anhydrides) can be used for the acylation of amines to yield amides. The reaction requires two equivalents of amines. The first amine molecule functions as a nucleophile and attacks the carbonyl carbon to produce a tetrahedral intermediate. This is followed by the loss of the leaving group and restoration of the C=O bond.
Next, the second equivalent of amine serves as a Brønsted base and deprotonates the quaternary...
2.8K

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Updated: Oct 20, 2025

Facile Preparation of 2Z,4E-Dienamides by the Olefination of Electron-deficient Alkenes with Allyl Acetate
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Facile Preparation of 2Z,4E-Dienamides by the Olefination of Electron-deficient Alkenes with Allyl Acetate

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晚期分子间基C-H氨化

Takafumi Ide1, Kaibo Feng1, Charlie F Dixon1

  • 1Department of Chemistry, Roger Adams Laboratory, University of Illinois, 505 South Mathews Avenue, Urbana, Illinois 61801, United States.

Journal of the American Chemical Society
|September 13, 2021
PubMed
概括

这项研究引入了一种催化剂,用于复杂分子的选择性晚期氨化. 这一突破使得天然产品可以有效地引入,从而改变其生物活性.

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科学领域:

  • 有机化学
  • 催化剂
  • 自然产品合成

背景情况:

  • 化C-H功能化是修改自然产品的关键.
  • 分子间氨化在反应性和选择性方面面临挑战,限制了基质范围.

研究的目的:

  • 开发一种选择性和高效的分子间基C-H氨化方法.
  • 为了使多样化和复杂的有机分子,包括自然产品的后期功能化.

主要方法:

  • 使用可持续的甲甲催化剂 ([MnIII(ClPc) ]).
  • 研究了32种循环和线性化合物的氨基化,包括具有竞争功能组的化合物.
  • 进行了机制研究以了解催化剂的选择性.

主要成果:

  • 在一系列基质中实现了选择性,准备性的分子间基C-H氨基化.
  • 在自然产品的晚期功能化中显示出高的位点,区域和异位选择性 (> 20: 1).
  • 催化剂的电友性和庞大性质,以及逐步的机制,有助于选择性.

结论:

  • [MnIII(ClPc) ]催化剂为具有挑战性的氨化反应提供了强大的解决方案.
  • 这种方法显著提升了天然产品和复杂分子的后期功能化策略.
  • 催化剂的选择性扩大了合成化学中的氨化适用性.