MCQMediumJEE 2026Alkenes (Electrophilic Addition, Polymerisation)

JEE Chemistry 2026 Question with Solution

Consider the reaction: Ph–CH=CH2peroxideHBrProduct\text{Ph–CH=CH}_2 \xrightarrow[\text{peroxide}]{\text{HBr}} \text{Product}

Which of the following statements are correct?

[A.] The reaction proceeds through a more stable radical intermediate. [B.] The role of peroxide is to generate H\mathrm{H^\bullet} radical. [C.] During this reaction, benzene is formed as a byproduct. [D.] 11-Bromo-22-phenylethane is formed as a minor product. [E.] The same reaction in absence of peroxide proceeds via a carbocation intermediate.

Choose the correct answer.

  • A

    A, B & D only

  • B

    C, D & E only

  • C

    A, C & E only

  • D

    A & E only

Answer

Correct answer:D

Step-by-step solution

Standard Method

Given: Addition of HBr to styrene Ph–CH=CH2\text{Ph–CH=CH}_2 is carried out in presence of peroxide.

Find: Which statements among A to E are correct.

Concept: In presence of peroxide, addition of HBr follows the free radical anti-Markovnikov mechanism. In absence of peroxide, the reaction proceeds by the ionic Markovnikov mechanism.

For styrene, addition of Br\mathrm{Br^\bullet} to the terminal carbon gives a benzylic radical, which is resonance-stabilized.

Statement A is true\Rightarrow \text{Statement A is true}

Peroxide first generates alkoxy radicals, and these ultimately produce Br\mathrm{Br^\bullet} from HBr. It does not generate H\mathrm{H^\bullet} radical as the active chain carrier.

Statement B is false\Rightarrow \text{Statement B is false}

No step in this mechanism forms benzene as a byproduct.

Statement C is false\Rightarrow \text{Statement C is false}

Anti-Markovnikov addition of HBr to styrene gives 11-bromo-22-phenylethane as the major product, not a minor product.

Statement D is false\Rightarrow \text{Statement D is false}

In absence of peroxide, addition of HBr occurs through the ionic pathway involving a carbocation intermediate.

Statement E is true\Rightarrow \text{Statement E is true}

Therefore, the correct statements are A and E only. The correct option is D.

Statement-wise Evaluation

Given: The alkene is styrene Ph–CH=CH2\text{Ph–CH=CH}_2 and reagent is HBr in presence of peroxide.

Find: Evaluate statements A to E.

  1. Statement A: Radical addition in styrene leads to a benzylic radical intermediate. A benzylic radical is stabilized by resonance with the phenyl ring.
  2. Statement B: Peroxide decomposes to radicals such as alkoxy radicals, which help generate Br\mathrm{Br^\bullet} from HBr. Hence saying peroxide generates H\mathrm{H^\bullet} radical is incorrect.
  3. Statement C: The mechanism is radical addition across the double bond. There is no pathway here for formation of benzene as a byproduct.
  4. Statement D: Under peroxide effect, anti-Markovnikov product forms predominantly. Therefore 11-bromo-22-phenylethane is the major product, so calling it minor is incorrect.
  5. Statement E: Without peroxide, the reaction switches to the ordinary ionic addition of HBr, which proceeds through a carbocation intermediate.

Hence only A and E are correct, so the answer is D.

Common mistakes

  • Assuming peroxide generates H\mathrm{H^\bullet} radical is incorrect. In the peroxide effect, radicals derived from peroxide help generate Br\mathrm{Br^\bullet} from HBr. Track the chain-carrying radical correctly.

  • Confusing major and minor product in anti-Markovnikov addition is a common error. For styrene with HBr/peroxide, the product corresponding to radical stabilization is the major one.

  • Applying the same mechanism in presence and absence of peroxide is wrong. With peroxide, the mechanism is radical; without peroxide, it is ionic and involves a carbocation intermediate.

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