Initiation creates radicals through heat, light, or a peroxide initiator. During propagation, a radical attacks a multiple bond and produces a new carbon-centered radical, allowing the sequence to continue through further additions. Termination occurs when radicals combine, removing reactive species from the chain. The balance among these stages influences whether addition proceeds efficiently or stops.
The carbon-centered radical formed after the initial attack is the key intermediate that connects one addition event to the next. Because it remains reactive, it can participate in further addition rather than ending the reaction immediately. This stepwise behavior allows chemists to build new carbon-carbon or carbon-heteroatom bonds from unsaturated starting materials.
Radical Addition proceeds through species containing unpaired electrons and carbon-centered radical intermediates, whereas ionic reactions follow a different electronic pathway. Its initiation can rely on heat, light, or peroxide conditions, so the transformation may operate under conditions that differ from ionic addition. This distinction helps chemists select a suitable mechanism for a planned organic conversion.
Analysis begins by identifying how radicals are generated, whether by heat, light, or a peroxide initiator. Next, follow attack at the alkene or alkyne multiple bond and formation of the carbon-centered radical. Finally, determine whether that intermediate propagates through additional addition or is removed by radical combination. This sequence clarifies the reaction pathway and outcome.
Chemists use this approach when they need to functionalize unsaturated molecules or create new carbon-carbon and carbon-heteroatom bonds. Its stepwise radical pathway can provide a synthetic option distinct from ionic reactions, especially when different reaction conditions are desirable. The resulting transformations support broader organic synthesis by converting alkene or alkyne functionality into more elaborated structures.
In polymerization, repeated radical additions can connect unsaturated units as the reactive sequence propagates. In molecular functionalization, addition across an alkene or alkyne introduces a new bond and changes the structure of the starting molecule. These applications make the process relevant both to chain-building chemistry and to the targeted modification of unsaturated compounds.