로그인

As depicted in Figure 1, base-catalyzed aldol addition involves adding two carbonyl compounds in aqueous sodium hydroxide to form a β-hydroxy carbonyl compound.

Figure1

Figure 1: The base-catalyzed aldol addition reaction of aldehydes.

The reaction preferentially occurs with simple aldehydes, where the α carbon is monosubstituted. The equilibrium of the reaction involving disubstituted aldehydes and ketones shifts backward to the reactants due to the steric interactions at the α carbon. The trisubstituted aldehydes with no α hydrogen atom are unsuitable for the aldol addition reaction.

The mechanism occurs in three distinct steps: enolization, nucleophilic addition, and protonation. Firstly, as pictured in Figure 2, the base deprotonates the α carbon of the aldehyde to generate an enolate ion.

Figure2

Figure 2: The enolization step in the mechanism of the base-catalyzed aldol addition reaction

Figure 3 captures the subsequent nucleophilic addition step. Here, the enolate ion functions as a nucleophile and attacks the carbonyl group of the unreacted aldehyde to form an alkoxide ion intermediate.

Figure3

Figure 3: The nucleophilic addition step in the base-catalyzed aldol addition reaction mechanism

Finally, as illustrated in Figure 4, the alkoxide ion is protonated to form a β-hydroxy aldehyde as the aldol product. The aldehyde and alcohol functional groups present in the product give the name ‘aldol’ to the reaction.

Figure4

Figure 4: The protonation step in the mechanism of the base-catalyzed aldol addition reaction

Tags
Base catalyzed Aldol AdditionCarbonyl Compoundshydroxy Carbonyl CompoundEnolizationNucleophilic AdditionProtonationEnolate IonAlkoxide IonAldol Product

장에서 15:

article

Now Playing

15.15 : Base-Catalyzed Aldol Addition Reaction

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.9K 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

15.14 : C–C 결합 형성: Aldol 응축 개요

α-Carbon Chemistry: Enols, Enolates, and Enamines

13.2K Views

See More

JoVE Logo

개인 정보 보호

이용 약관

정책

연구

교육

JoVE 소개

Copyright © 2025 MyJoVE Corporation. 판권 소유