Chemistry · Ch 12 — Basic Concepts of Organic Reactions
Addition Reactions
Addition Reactions
An addition reaction is the characteristic reaction of an unsaturated compound -- one containing a localised C=C double bond or CC triple bond. In an addition reaction, two molecules combine to give a single product: one bond of the substrate breaks, and two new sigma bonds form in its place. Correspondingly, the substrate's hybridisation changes during the reaction -- from to for the addition reactions of alkenes, and from to for the addition reactions of alkynes.
Like substitution, addition reactions are classified by the nature of the initiating reagent into three types:
- Electrophilic addition. The textbook example is the bromination of ethylene: polarises as it approaches the electron-rich double bond, and the electrophilic end () adds first, generating a bromonium-ion-like intermediate that the released then captures, giving the addition product 1,2-dibromoethane,
- Nucleophilic addition. The textbook example is the addition of HCN to acetaldehyde: the nucleophile attacks the electrophilic carbonyl carbon while the C=O electrons shift onto oxygen (the electromeric effect from the earlier section), and the resulting alkoxide picks up a proton to give acetaldehyde cyanohydrin, …
Worked out. Ethylene, H2C=CH2, is attacked by the electrophile Br+ (from Br2, which polarises as it approaches the electron-rich double bond); Br+ adds to one carbon, generating a bromonium-ion-like intermediate/carbocation, which is then captured by the released Br- to give the addition product 1,2-dibromoethane, BrCH2-CH2Br -- the textbook example of electrophilic addition. …
Worked out. Acetaldehyde, CH3-CHO, is attacked at its electrophilic carbonyl carbon by the nucleophile CN- (from HCN); CN- adds to the carbon while the C=O pi electrons shift onto oxygen, and the resulting alkoxide picks up H+ to give acetaldehyde cyanohydrin, CH3-CH(OH)(CN) -- the textbook example of nucleophilic addition. …
Worked out. Ethylene, H2C=CH2, reacts with HBr in the presence of benzoyl peroxide (a radical initiator); a bromine radical (Br*, generated from the peroxide) adds to the double bond to give a carbon radical, CH3-CH2*, which then abstracts a hydrogen from another HBr to give ethyl bromide, CH3-CH2-Br, and regenerate Br* -- the textbook example of free-radical addition, whose radical-chain mechanism is what causes anti-Markovnikov addition of HBr specifically (the 'peroxide effect'). …