芳香化驱动的C-C键裂解无压力子 访问乙烯基硫
Hong-Chen Wang1, Hong Fu1, Peng-Fei Zhao1
1State Key Laboratory of Natural Product Chemistry, College of Chemistry and Chemical Engineering, Lanzhou University, Lanzhou 730000, China.
Organic letters
|December 11, 2025
概括
这项研究引入了一种新的方法,利用激素化学分解子. 该过程有效地将各种子转化为有价值的乙烯酸硫,在单一的两步程序中.
科学领域:
- 有机化学 有机化学
- 合成化学 合成化学
背景情况:
- 子是合成化学中的基本构建块.
- 开发子功能化的高效方法仍然是关键的研究领域.
研究的目的:
- 开发一种基于激素的新型协议,用于解构未受压力子.
- 为了使各种基前体能够合成有价值的乙硫.
主要方法:
- 基在现场转化为二基诺林 (DHQ) 前芳香物.
- 氧化性芳香化,其次是用DABSO和乙烯的激素级联反应.
- 一个一子,两步合成策略.
主要成果:
- 成功地彻底解构了非循环和循环子.
- 适用于含有的复杂天然产品.
- 一系列有价值的乙烯基硫的高效合成.
结论:
- 开发的协议为子转化提供了一种多功能和高效的途径.
- 这种方法可以从易于获得的基原料中获得乙烯基硫.
- 一,两步方法简化了复杂的合成途径.
相关概念视频
Ketones with Nonenolizable Aromatic Aldehydes: Claisen–Schmidt Condensation
4.3K
Benzaldehyde, like formaldehyde, lacks an α hydrogen and cannot enolize to form an enolate. Hence, the reaction of benzaldehyde with a ketone in the presence of an aqueous base forms a single crossed product. This reaction is referred to as Claisen–Schmidt condensation.
As the self-condensation of ketones is generally not favored in basic conditions, the self-condensed products do not form in the reaction between ketones and benzaldehyde. The general reaction of Claisen–Schmidt...
As the self-condensation of ketones is generally not favored in basic conditions, the self-condensed products do not form in the reaction between ketones and benzaldehyde. The general reaction of Claisen–Schmidt...
4.3K
C–C Bond Cleavage: Retro-Aldol Reaction
7.4K
The reverse of the aldol addition reaction is called the retro-aldol reaction. Here, the carbon–carbon bond in the aldol product is cleaved under acidic or basic conditions to form two molecules of carbonyl compounds. The mechanism of the reaction consists of three steps.
In the first step, as depicted in Figure 1, the base deprotonates the β-hydroxy ketone at the hydroxyl group to form an alkoxide ion.
In the first step, as depicted in Figure 1, the base deprotonates the β-hydroxy ketone at the hydroxyl group to form an alkoxide ion.
7.4K
Alkynes to Carboxylic Acids: Oxidative Cleavage
6.7K
Alkynes undergo oxidative cleavage in the presence of oxidizing reagents like potassium permanganate and ozone. The triple bond — one σ bond and two π bonds — is completely cleaved, and the alkyne is oxidized to carboxylic acids. When warm and basic aqueous potassium permanganate is used as an oxidizing agent, alkynes are first converted to carboxylate salts via an unstable α-diketone intermediate. Further, a mild acid treatment protonates the carboxylate anions...
6.7K
[3,3] Sigmatropic Rearrangement of Allyl Vinyl Ethers: Claisen Rearrangement
2.7K
The Claisen rearrangement is a [3,3] sigmatropic rearrangement of allyl vinyl ethers to unsaturated carbonyl compounds. The rearrangement is a concerted pericyclic reaction proceeding via a chair-like transition state.
2.7K
Structures of Aldehydes and Ketones
11.4K
Vanillin—a flavoring agent in vanilla, cinnamaldehyde—a molecule responsible for the distinct smell of cinnamon, and acetone—a strong-smelling ingredient in nail polish removers, all belong to a class of carbonyl compounds called aldehydes and ketones (Figure 1). Although both aldehydes and ketones contain the characteristic carbonyl (C=O) bond, their chemical structures vary with respect to the groups directly attached to the carbonyl carbon.
In aldehydes (Figures 1a and 1b), the...
In aldehydes (Figures 1a and 1b), the...
11.4K
Preparation of Aldehydes and Ketones from Alcohols, Alkenes, and Alkynes
5.1K
Aldehydes and ketones are prepared from alcohols, alkenes, and alkynes via different reaction pathways. Alcohols are the most commonly used substrates for synthesizing aldehydes and ketones. The conversion of alcohol to aldehyde, which involves the oxidation process, depends on the class of the alcohol used and the strength of the oxidizing agent. For instance, primary alcohol will form an aldehyde when treated with a weak oxidizing agent; however, it gets over-oxidized to a carboxylic acid in...
5.1K


