N-halosuccinimide/BF3-H2O,高效的电友化化系统用于芳化合物
G K Surya Prakash1, Thomas Mathew, Dushyanthi Hoole
1Donald P. and Katherine B. Loker Hydrocarbon Research Institute and Department of Chemistry, University of Southern California, Los Angeles, California 90089-1661, USA. gprakash@usc.edu
Journal of the American Chemical Society
|December 2, 2004
概括
N-Halosuccinimides (NXS) 是由BF(3)-H(2) O有效激活的,这是一种具有成本效益的试剂,可使失活的芳香化合物的化. 这种新方法为电友芳香替代反应提供了一种实用方法.
科学领域:
- 有机化学 有机化学
- 电友芳香替代的电友芳香替代
背景情况:
- N-Halosuccinimides (NXS) 是一种多功能化剂.
- 激活NXS通常需要强酸,如三甲硫酸.
- 失活的芳香化合物的化仍然是一个合成挑战.
研究的目的:
- 开发一种更经济,更有效的激活N-Halosuccinimides的方法.
- 为了使使用NXS去活化芳香基质的化.
- 为了研究NXS激活和化机制.
主要方法:
- 使用BF(3)-H(2) O作为N-Halosuccinimides的激活剂.
- 在非活化芳香化合物上进行电友化化反应.
- 使用密度函数理论 (DFT) 计算来研究反应机制和中间体.
主要成果:
- BF(3)-H(2) O有效地激活NXS,与三甲硫酸相比,但更经济.
- 该NXS/BF(3)-H(2) O系统成功地化了非活化的芳香基质.
- DFT计算揭示了负责素转移的超电友物种的形成.
结论:
- 该NXS/BF(3)-H(2) O系统代表了一种高效和具有成本效益的试剂组合用于电友化.
- 这种方法为合成化失活芳香物提供了一种有价值的工具.
- 了解机械路径可以提高未来化策略的设计.
相关概念视频
Formation of Halohydrin from Alkenes
An alkene, such as propene, reacts with bromine in the presence of water to yield a halohydrin. Halohydrins contain a halogen and a hydroxyl group attached to adjacent carbons. When the halogen is bromine, it is called a bromohydrin, while a chlorohydrin has chlorine as the halogen.
Hydroboration-Oxidation of Alkenes
In addition to the oxymercuration–demercuration method, which converts the alkenes to alcohols with Markovnikov orientation, a complementary hydroboration-oxidation method yields the anti-Markovnikov product. The hydroboration reaction, discovered in 1959 by H.C. Brown, involves the addition of a B–H bond of borane to an alkene giving an organoborane intermediate. The oxidation of this intermediate with basic hydrogen peroxide forms an alcohol.
Acid Halides to Carboxylic Acids: Hydrolysis
Hydrolysis of acid halides is a nucleophilic acyl substitution reaction in which acid halides react with water to give carboxylic acids. The reaction occurs readily and does not require acid or a base catalyst.
As shown below, the mechanism involves a nucleophilic attack by water at the carbonyl carbon to form a tetrahedral intermediate. This is followed by the reformation of the carbon–oxygen π bond along with the departure of a halide ion. A final proton transfer step yields carboxylic acid...
As shown below, the mechanism involves a nucleophilic attack by water at the carbonyl carbon to form a tetrahedral intermediate. This is followed by the reformation of the carbon–oxygen π bond along with the departure of a halide ion. A final proton transfer step yields carboxylic acid...
Acid Halides to Alcohols: LiAlH4 Reduction
Acid halides are reduced to alcohols in the presence of a strong reducing agent like lithium aluminum hydride.
The mechanism proceeds in three steps. First, the nucleophilic hydride ion attacks the carbonyl carbon of the acid halide to form a tetrahedral intermediate. Next, the carbonyl group is re-formed, and the halide ion departs as a leaving group, generating an aldehyde. A second nucleophilic attack by the hydride yields an alkoxide ion, which, upon protonation, gives a primary alcohol as...
The mechanism proceeds in three steps. First, the nucleophilic hydride ion attacks the carbonyl carbon of the acid halide to form a tetrahedral intermediate. Next, the carbonyl group is re-formed, and the halide ion departs as a leaving group, generating an aldehyde. A second nucleophilic attack by the hydride yields an alkoxide ion, which, upon protonation, gives a primary alcohol as...
Nucleophilic Aromatic Substitution: Elimination–Addition
Simple aryl halides do not react with nucleophiles. However, nucleophilic aromatic substitutions can be forced under certain conditions, such as high temperatures or strong bases. The mechanism of substitution under such conditions involves the highly unstable and reactive benzyne intermediate. Benzyne contains equivalent carbon centers at both ends of the triple bond, each of which is equally susceptible to nucleophilic attack. This 50–50 distribution of products is confirmed through isotopic...
Radical Substitution: Allylic Bromination
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...


