JoVE Logo

登录

Electrocyclic reactions, cycloadditions, and sigmatropic rearrangements are concerted pericyclic reactions that proceed via a cyclic transition state. These reactions are stereospecific and regioselective. The stereochemistry of the products depends on the symmetry characteristics of the interacting orbitals and the reaction conditions. Accordingly, pericyclic reactions are classified as either symmetry-allowed or symmetry-forbidden. Woodward and Hoffmann presented the selection criteria for the symmetry-allowed thermal and photochemical reactions.

The theoretical basis for Woodward–Hoffmann rules rests on the principle of conservation of orbital symmetry. This approach suggests that reactions, where the symmetry characteristics of the reactants’ molecular orbitals correlate to the molecular orbitals of the products, proceed via a low energy transition state and become symmetry-allowed. However, a lack of correlation destabilizes the transition state and makes it a symmetry-forbidden process. The rules are expressed as follows:

  • Thermal pericyclic reactions are symmetry-allowed when the sum of (4q + 2)s and (4r)a components is odd.
  • Photochemical pericyclic reactions are symmetry-allowed when the sum of (4q + 2)s and (4r)a components is even.
    where q and r = 0, 1, 2, 3, …; s = suprafacial; a = antarafacial

Microscopic Reversibility

The principle of microscopic reversibility applies to systems at equilibrium. Since pericyclic reactions are equilibrium processes, it follows that the forward and reverse reactions will follow the same mechanism and proceed via the same transition state. So, the selection rules apply for both the forward and the reverse reactions.

For example, the electrocyclic ring-closure of octatriene under thermal conditions is a suprafacial, disrotatory process. The reverse ring-opening reaction will proceed in a similar manner.

Tags

Woodward Hoffmann Selection RulesPericyclic ReactionsCycloadditionsSigmatropic RearrangementsConcerted ReactionsStereochemistryOrbital SymmetryThermal ReactionsPhotochemical ReactionsMicroscopic ReversibilityElectrocyclic ReactionsSuprafacialAntarafacial

来自章节 16:

article

Now Playing

16.27 : Woodward–Hoffmann Selection Rules and Microscopic Reversibility

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

3.0K Views

article

16.1 : 共轭二烯的结构

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

4.7K Views

article

16.2 : 共轭二烯的稳定性

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

3.2K Views

article

16.3 : π 1,3-丁二烯的分子轨道

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

8.4K Views

article

16.4 : 烯丙基阳离子和阴离子的 π 分子轨道

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

4.0K Views

article

16.5 : 烯丙基自由基的 π 分子轨道

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

3.3K Views

article

16.6 : HX 与 1,3-丁二烯的亲电 1,2-和 1,4-加成反应

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

5.1K Views

article

16.7 : X2 与 1,3-丁二烯的亲电 1,2- 和 1,4-加成反应

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

2.2K Views

article

16.8 : HX 与 1,3-丁二烯的亲电添加:热力学与动力学控制

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

2.4K Views

article

16.9 : 共轭系统的紫外-可见光谱

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

6.7K Views

article

16.10 : 紫外-可见光谱法:伍德沃德-Fieser 规则

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

23.3K Views

article

16.11 : 环状反应:简介

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

8.2K Views

article

16.12 : 热和光化学电循环反应:概述

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

2.3K Views

article

16.13 : 热电循环反应:立体化学

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

1.9K Views

article

16.14 : 光化学电循环反应:立体化学

Dienes, Conjugated Pi Systems, and Pericyclic Reactions

1.8K Views

See More

JoVE Logo

政策

使用条款

隐私

科研

教育

关于 JoVE

版权所属 © 2025 MyJoVE 公司版权所有,本公司不涉及任何医疗业务和医疗服务。