로그인

Electrocyclic reactions are reversible reactions. They involve an intramolecular cyclization or ring-opening of a conjugated polyene. Shown below are two examples of electrocyclic reactions. In the first reaction, the formation of the cyclic product is favored. In contrast, in the second reaction, ring-opening is favored due to the high ring strain associated with cyclobutene formation.

Figure1

Electrocyclic reactions are highly stereospecific. For a substituted polyene, the stereochemical outcome depends on the configuration of the reactant and the condition of the reaction, such as thermal or photochemical.

Figure2

The stereochemistry of the product can be predicted from the symmetry of the frontier orbitals of the reactant; more specifically, the HOMO.

Under thermal conditions, the reactant’s ground state HOMO is symmetric, and the outermost p orbitals rotate in opposite directions, called disrotatory motion. In contrast, under photochemical conditions, the reactant’s excited state HOMO is asymmetric, and the outermost p orbitals rotate in the same direction, called conrotatory motion.

So, under thermal conditions, a 6 π electron system has a symmetric ground state HOMO, which undergoes a disrotatory motion to give a cis product. However, under photochemical conditions, a 6 π electron system has an asymmetric excited-state HOMO that undergoes a conrotatory motion to form a trans product.

Interestingly, the 4 π electron system has an asymmetric ground-state HOMO under thermal conditions, which undergoes a conrotatory motion to give a trans product. In contrast, the disrotatory motion of the symmetric excited-state HOMO of the 4 π system results in a cis product under photochemical conditions.

Tags
Electrocyclic ReactionsThermal ConditionsPhotochemical ConditionsDisrotatory MotionConrotatory MotionFrontier OrbitalsHOMO6 Electron System4 Electron SystemRing openingRing FormationStereochemistryStereoselectivity

장에서 16:

article

Now Playing

16.12 : Thermal and Photochemical Electrocyclic Reactions: Overview

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

2.2K Views

article

16.1 : Conjugated Dienes의 구조

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

4.2K Views

article

16.2 : Conjugated Dienes의 안정성

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

3.1K Views

article

16.3 : π 1,3-부타디엔의 분자 궤도

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

8.0K Views

article

16.4 : π 알릴 양이온과 음이온의 분자 궤도

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

3.9K Views

article

16.5 : π Allyl Radical의 분자 안와

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

3.2K Views

article

16.6 : 친전자성 1,2- 및 1,4- HX를 1,3- 부타디엔에 첨가

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

4.6K Views

article

16.7 : 친전자성 1,2- 및 1,4-1,3-부타디엔에 X2의 첨가

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

2.2K Views

article

16.8 : 1,3-부타디엔에 HX의 친전자성 첨가: 열역학 대 운동 제어

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

2.3K Views

article

16.9 : Conjugated Systems의 UV-Vis 분광광도계

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

6.6K Views

article

16.10 : UV-Vis 분광법: Woodward-Fieser 규칙

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

22.5K Views

article

16.11 : 페리사이클릭 반응: 소개

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

7.1K Views

article

16.13 : 열 전기 순환 반응 : 입체 화학

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

1.9K Views

article

16.14 : 광화학 전기순환 반응: 입체화학

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

1.7K Views

article

16.15 : Cycloaddition 반응: 개요

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

2.4K Views

See More

JoVE Logo

개인 정보 보호

이용 약관

정책

연구

교육

JoVE 소개

Copyright © 2025 MyJoVE Corporation. 판권 소유