Imagine you have a row of identical, perfectly content people sitting in chairs — that's an alkane. Every carbon is holding onto its hydrogens tightly, and nothing much happens. Now, you bring in a highly reactive, aggressive molecule like chlorine or bromine. But here's the catch: these molecules won't attack on their own. They need a trigger — a flash of UV light or heat — to break them into something far more dangerous.
That trigger is the entire point.
The Intuition: Why Light?
A chlorine molecule (Cl2) is perfectly happy as a pair. The bond between the two chlorine atoms is strong, but not unbreakable. UV light carries enough energy to snap that bond cleanly, producing two free radicals — atoms with an unpaired electron. That unpaired electron is desperate to find a partner, making the radical violently reactive. It will rip a hydrogen off the nearest alkane to pair up, leaving behind a carbon radical. That carbon radical then grabs a chlorine from another Cl2 molecule, producing the final product and regenerating a chlorine radical to start the cycle again.
This is a chain reaction — one photon of light can lead to thousands of substitution events.
The Precise Mechanism: Three Phases
Free radical halogenation proceeds through three distinct stages:
1. Initiation — The trigger. UV light (or heat, around 250-400°C) homolytically cleaves the halogen-halogen bond:
Cl2hν2Cl∙
Each dot represents the unpaired electron. This is the only step that requires external energy.
2. Propagation — The chain. Two steps repeat in a loop:
Step 1: A chlorine radical abstracts a hydrogen from the alkane:
Cl∙+CH4⟶HCl+CH3∙
Step 2: The methyl radical reacts with a chlorine molecule:
CH3∙+Cl2⟶CH3Cl+Cl∙
The chlorine radical is regenerated in Step 2, so it can attack another methane molecule. This cycle can repeat tens of thousands of times before termination.
3. Termination — The chain ends when two radicals meet and combine:
Cl∙+Cl∙⟶Cl2
CH3∙+Cl∙⟶CH3Cl
CH3∙+CH3∙⟶CH3CH3
The last reaction is important — it explains why you sometimes get trace amounts of ethane when chlorinating methane.
Watch out
A Common Mistake
Students often think the halogen attacks the alkane directly. It does not. The radical attacks the alkane. The halogen molecule (Cl2) only appears in the second propagation step. The first step always involves the radical stealing a hydrogen.
Selectivity: Which Hydrogen Gets Replaced?
If the alkane has different types of hydrogens (primary, secondary, tertiary), the reaction is not random. The radical intermediate that forms is more stable when the unpaired electron is on a more substituted carbon.
Important
Stability Order of Carbon Radicals
Tertiary>Secondary>Primary>Methyl
More substituted radicals are more stable because of hyperconjugation and inductive effects from neighbouring alkyl groups. …
Free-radical chlorination of methane proceeds by successive substitution of H atoms, giving CH3Cl, CH2Cl2, CHCl3 and CCl4 as the products, but not ethane (CH3-CH3), which would require a C-C coupling reaction rather than substitution. …
Methane's chlorination is a free-radical substitution that replaces H atoms one at a time with Cl, giving CH3Cl -> CH2Cl2 -> CHCl3 -> CCl4. Ethane (CH3-CH3) is not a substitution product of this reaction; it would require carbon-carbon bond formation, which does not occur in ordinary halogenation of methane.
Methane reacts with Cl2 in the presence of sunlight/UV light (or heat) via a free-radical chain mechanism:
Same / Similar Concept — real previous-year questions on the same or a closely similar concept, not this exact question.
CBSE 2026Set ANNUAL1 markMCQ
Q.Hydrocarbons containing single bond are called
(a) Unsaturated hydrocarbon
(b) Saturated hydrocarbon
(c) Aromatic hydrocarbon
(d) None of these
›Reveal solutionSolution
Single-bonded hydrocarbons are saturated (alkanes).
Saturated hydrocarbons contain only carbon-carbon single bonds and are called alkanes (general formula CnH2n+2). Unsaturated hydrocarbons contain double bonds (alkenes) or triple bonds …
Q.During the chlorination of methane which of the following is not formed at all?
(a) CH3Cl
(b) CH3-CH3
(c) CH2Cl2
(d) CCl4
›Reveal solutionSolution
Methane's chlorination is a free-radical substitution that replaces H atoms one at a time with Cl, giving CH3Cl -> CH2Cl2 -> CHCl3 -> CCl4. Ethane (CH3-CH3) is not a substitution product of this reaction; it would require carbon-carbon bond formation, which does not occur in ordinary halogenation of methane.
Methane reacts with Cl2 in the presence of sunlight/UV light (or heat) via a free-radical chain mechanism: