로그인

Aldol condensation is an important route in synthetic organic chemistry used to generate a new carbon–carbon bond under basic or acidic conditions. The aldol condensation reaction presented in Figure 1 constitutes an aldol addition reaction followed by the dehydration process.

Figure1

Figure 1. The general aldol addition reaction of aldehydes.

Aldol addition reactions are reversible and are of two types: self-addition and crossed-addition. Combining two identical carbonyl compounds is called self-addition. As shown in Figure 2, the reaction between two different carbonyl compounds is called crossed-addition. Of the two carbonyl compounds involved in the reaction, one functions as a nucleophile and the other as an electrophile.

Figure2

Figure 2. The crossed aldol addition reaction of aldehydes.

The two types of aldol addition reactions produce a β-hydroxy carbonyl as the aldol addition product. While a self-addition reaction yields a single aldol product, a crossed-addition results in a mixture of products, decreasing the reaction's usefulness in organic chemistry. Accordingly, the choice of reactants is paramount in defining the efficacy of the reaction.

Figure 3 depicts the subsequent dehydration of a β-hydroxy carbonyl compound under suitable reaction conditions to form the corresponding condensation product.

Figure3

Figure 3. The dehydration reaction of aldols.

Tags
Aldol CondensationSynthetic Organic ChemistryCarbon carbon BondAldol AdditionReversible ReactionsSelf additionCrossed additionCarbonyl CompoundsNucleophileElectrophilehydroxy CarbonylDehydration ReactionReaction Conditions

장에서 15:

article

Now Playing

15.14 : C–C Bond Formation: Aldol Condensation Overview

α-Carbon Chemistry: Enols, Enolates, and Enamines

13.2K Views

article

15.1 : Enols의 반응성

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.8K Views

article

15.2 : Enolate 이온의 반응성

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.3K Views

article

15.3 : 에놀(Enol)과 에놀라산(Enolate)의 종류

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.3K Views

article

15.4 : Enolate 메커니즘 규칙

α-Carbon Chemistry: Enols, Enolates, and Enamines

1.9K Views

article

15.5 : Enolates의 위치 선택적 형성

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.4K Views

article

15.6 : Enolization의 입체화학적 효과

α-Carbon Chemistry: Enols, Enolates, and Enamines

1.9K Views

article

15.7 : 알데히드와 케톤의 산 촉매 α-할로겐화

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.4K Views

article

15.8 : 알데히드와 케톤의 염기 촉진 α-할로겐화

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.2K Views

article

15.9 : 메틸 케톤의 다중 할로겐화: Haloform 반응

α-Carbon Chemistry: Enols, Enolates, and Enamines

1.8K Views

article

15.10 : α-Carboxylic Acid Derivatives의 할로겐화: 개요

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.1K Views

article

15.11 : 카르복실산의 α-브롬화: 지옥-볼하르트-젤린스키 반응

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.9K Views

article

15.12 : α-할로카르보닐 화합물의 반응: 친핵성 치환

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.1K Views

article

15.13 : 에놀의 니트로화(nitrosation)

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.3K Views

article

15.15 : 염기 촉매 알돌 첨가 반응

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.9K Views

See More

JoVE Logo

개인 정보 보호

이용 약관

정책

연구

교육

JoVE 소개

Copyright © 2025 MyJoVE Corporation. 판권 소유