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Halogenation of Alkenes02:46

Halogenation of Alkenes

Halogenation is the addition of chlorine or bromine across the double bond in an alkene to yield a vicinal dihalide. The reaction occurs in the presence of inert and non-nucleophilic solvents, such as methylene chloride, chloroform, or carbon tetrachloride.
Consider the bromination of cyclopentene. Molecular bromine is polarized in the proximity of the π electrons of cyclopentene. An electrophilic bromine atom adds across the double bond, forming a cyclic bromonium ion intermediate.
Reactions at the Benzylic Position: Halogenation01:11

Reactions at the Benzylic Position: Halogenation

Benzylic halogenation takes place under conditions that favor radical reactions such as heat, light, or a free radical initiator like peroxide.
Base-Promoted α-Halogenation of Aldehydes and Ketones00:51

Base-Promoted α-Halogenation of Aldehydes and Ketones

α-Halogenation of aldehydes and ketones is a reaction involving the substitution of α hydrogens with halogens in the presence of a base.  The reaction begins with the abstraction of  α hydrogen by the base to produce a nucleophilic enolate ion. This intermediate undergoes a subsequent nucleophilic substitution with the halogen to produce a monohalogenated carbonyl compound. If the starting substrate has more than one α hydrogen, it is difficult to stop the reaction at the stage of...
Electrophilic Addition to Alkynes: Hydrohalogenation02:35

Electrophilic Addition to Alkynes: Hydrohalogenation

Electrophilic addition of hydrogen halides, HX (X = Cl, Br or I) to alkenes forms alkyl halides as per Markovnikov's rule, where the hydrogen gets added to the less substituted carbon of the double bond. Hydrohalogenation of alkynes takes place in a similar manner, with the first addition of HX forming a vinyl halide and the second giving a geminal dihalide.
Radical Halogenation: Thermodynamics01:34

Radical Halogenation: Thermodynamics

The thermodynamic favorability of a reaction is determined by the change in Gibbs free energy (ΔG). ΔG has two components- enthalpy (ΔH) and entropy (ΔS). The entropy component is negligible for alkane halogenation because the number of reactants and product molecules are equal. In this case, the ΔG is governed only by the enthalpy component. The most crucial factor that determines ΔH is the strength of the bonds. ΔH can be determined by comparing the energy between bonds broken and bonds...
Electrophilic 1,2- and 1,4-Addition of X2 to 1,3-Butadiene01:14

Electrophilic 1,2- and 1,4-Addition of X2 to 1,3-Butadiene

Electrophilic addition of halogens to alkenes proceeds via a cyclic halonium ion to form a 1,2-dihalide or a vicinal dihalide.

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Updated: Jul 14, 2026

From Molecules to Materials: Engineering New Ionic Liquid Crystals Through Halogen Bonding
06:44

From Molecules to Materials: Engineering New Ionic Liquid Crystals Through Halogen Bonding

Published on: March 24, 2018

Halogen dance reactions--a review.

Michael Schnürch1, Markus Spina, Ather Farooq Khan

  • 1Institute of Applied Synthetic Chemistry, Vienna University of Technology, Getreidemarkt 9/163-OC, 1060 Vienna, Austria.

Chemical Society Reviews
|June 20, 2007
PubMed
Summary

Halogen Dance (HD) reactions provide synthetic chemists access to difficult-to-functionalize aromatic and heteroaromatic positions. This review details HD reaction principles, mechanisms, and applications to encourage wider adoption in complex synthesis.

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Mizoroki-Heck Cross-coupling Reactions Catalyzed by Dichloro{bis[1,1',1''-(phosphinetriyl)tripiperidine]}palladium Under Mild Reaction Conditions
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Published on: June 20, 2014

Area of Science:

  • Organic Chemistry
  • Synthetic Chemistry

Background:

  • Halogen Dance (HD) reactions offer unique synthetic utility for functionalizing aromatic and heteroaromatic systems.
  • These reactions provide access to positions often challenging to modify via conventional methods, enabling versatile scaffold construction.
  • Despite their usefulness, HD reactions are frequently overlooked in synthetic planning due to a lack of comprehensive resources.

Purpose of the Study:

  • To provide a clear and concise overview of Halogen Dance reactions.
  • To highlight the advantages, versatility, and limitations of HD reactions for synthetic chemists.
  • To encourage broader application of HD reactions in synthetic strategies.

Main Methods:

  • Historical review of Halogen Dance reactions from 1951 to the present.
  • Outline of key contributions to the elucidation of HD reaction mechanisms.
  • Detailed mechanistic discussion and analysis of influencing factors.

Main Results:

  • Comprehensive coverage of the Halogen Dance reaction field.
  • Elucidation of reaction mechanisms and influencing parameters.
  • Demonstration of HD reactions across diverse carbocyclic and heterocyclic systems.

Conclusions:

  • Halogen Dance reactions are a valuable, yet underutilized, tool in synthetic chemistry.
  • Understanding the mechanism and scope enhances the strategic application of HD reactions.
  • HD reactions facilitate the synthesis of complex molecules and versatile scaffolds.