로그인

The carbonyl carbon in an aldehyde or ketone is the site of a nucleophilic attack due to its electron-deficient nature. Depending on the strength of the incoming nucleophile, the reaction occurs via different mechanistic pathways.

A stronger nucleophile can directly attack the electrophilic center, the carbonyl carbon. The HOMO orbital of the nucleophile interacts with the LUMO (π* antibonding) orbital present on the carbonyl carbon. This interaction breaks the π bond and shifts the π bonding electrons onto the carbonyl oxygen, forming a basic alkoxide anion. The basic alkoxide ion intermediateabstracts a proton, forming the addition product as depicted in the following figure.

Figure1

On the other hand, a weak nucleophile cannot directly attack the electrophilic carbonyl carbon. For the weak nucleophile to react, the electrophilicity of the carbonyl carbon needs to be enhanced substantially. Thus, the aldehyde or ketone is treated with an acid catalyst to improve the electrophilicity of carbonyl carbon. As shown in the figure below,the acid catalyst protonates the carbonyl oxygen forming an oxonium cation. The oxonium cation is resonance stabilized by delocalizing the positive charge onto the adjacent carbonyl carbon atom. This delocalization of the positive charge increases the electrophilicity of the carbonyl carbon, leading to the attack of the weak nucleophile.

Figure2

Tags

Nucleophilic AdditionCarbonyl GroupAldehydeKetoneNucleophileCarbonyl CarbonHOMOLUMOBondAlkoxide AnionAcid CatalystOxonium CationElectrophilicity

장에서 12:

article

Now Playing

12.10 : Nucleophilic Addition to the Carbonyl Group: General Mechanism

Aldehydes and Ketones

4.6K Views

article

12.1 : 알데히드와 케톤의 구조

Aldehydes and Ketones

7.7K Views

article

12.2 : IUPAC 알데히드의 명명법

Aldehydes and Ketones

5.1K Views

article

12.3 : IUPAC 케톤의 명명법

Aldehydes and Ketones

5.3K Views

article

12.4 : 알데히드와 케톤의 일반적인 이름

Aldehydes and Ketones

3.3K Views

article

12.5 : 알데히드 및 케톤의 IR 및 UV-Vis 분광법

Aldehydes and Ketones

5.0K Views

article

12.6 : NMR 분광법 및 알데히드 및 케톤의 질량 분광법

Aldehydes and Ketones

3.5K Views

article

12.7 : Alcohols, Alkenes 및 Alkynes로부터 Aldehydes 및 Ketones의 제조

Aldehydes and Ketones

3.3K Views

article

12.8 : 니트릴과 카르복실산으로부터 알데히드와 케톤의 제조

Aldehydes and Ketones

3.3K Views

article

12.9 : 카르복실산 유도체로부터 알데히드 및 케톤의 제조

Aldehydes and Ketones

2.4K Views

article

12.11 : 알데히드와 케톤과 물 함유: 수분 형성

Aldehydes and Ketones

2.9K Views

article

12.12 : 알데히드와 알코올을 함유한 케톤: 헤미아세탈 형성

Aldehydes and Ketones

5.2K Views

article

12.13 : 알데히드 및 케톤에 대한 그룹 보호: 소개

Aldehydes and Ketones

6.2K Views

article

12.14 : 아세탈과 티오아세탈은 알데히드와 케톤을 위한 보호기로서

Aldehydes and Ketones

3.8K Views

article

12.15 : HCN을 이용한 알데히드 및 케톤: 시아노히드린 형성 개요

Aldehydes and Ketones

2.5K Views

See More

JoVE Logo

개인 정보 보호

이용 약관

정책

연구

교육

JoVE 소개

Copyright © 2025 MyJoVE Corporation. 판권 소유