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Q.Assertion (A) : The molecularity of the reaction H2+Br2→2HBrH_2 + Br_2 \rightarrow 2HBr appears to be 2. Reason (R) : Two molecules of the reactants are involved in the given elementary reaction. (A) Both Assertion (A) and Reason (R) are true and Reason (R) is the correct explanation of the Assertion (A). (B) Both Assertion (A) and Reason (R) are true, but Reason (R) is not the correct explanation of the Assertion (A). (C) Assertion (A) is true, but Reason (R) is false. (D) Assertion (A) is false, but Reason (R) is true.

CBSECBSE Class XII Board 2023MCQ· 1mImportance★★★★★
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The reaction H2+Br2→2HBrH_2 + Br_2 \rightarrow 2HBr is not elementary — it proceeds via a complex chain mechanism. So while the molecularity appears to be 2 from the balanced equation, the reason given (that it is an elementary reaction) is false. Hence Assertion is true, Reason is false → option (C).


Concept and Intuition

The trap here is a classic one: confusing the stoichiometric coefficient sum (the numbers in the balanced equation) with molecularity. Molecularity is defined only for an elementary reaction — a single step that occurs exactly as written. For such a step, molecularity equals the number of molecules that collide in that step.

The reaction H2+Br2→2HBrH_2 + Br_2 \rightarrow 2HBr looks like a simple bimolecular collision. But in reality, this reaction is not elementary. It is a famous example of a chain reaction (discovered by Bodenstein and Lind in 1906). The actual mechanism involves several steps: initiation, propagation, and termination. The overall balanced equation hides this complexity.

So the Assertion (A) says "the molecularity appears to be 2" — that is, if you naively look at the equation, you'd guess molecularity = 2. That statement is true. The Reason (R) says "two molecules of reactants are involved in the given elementary reaction" — but the reaction is not elementary, so the Reason is false.


Step-by-step reasoning

  1. Define molecularity

    Molecularity is the number of reactant particles (atoms, molecules, ions) that come together in an elementary step. It is always a small integer (1, 2, rarely 3) and is defined only for elementary reactions. For a complex reaction, molecularity has no meaning — we talk about order instead.

  2. Check if H2+Br2→2HBrH_2 + Br_2 \rightarrow 2HBr is elementary

    The actual mechanism of this gas-phase reaction is well-known:

    • Initiation: Br2→2Br⋅Br_2 \rightarrow 2Br^\cdot (photochemical or thermal)
    • Propagation: Br⋅+H2→HBr+H⋅Br^\cdot + H_2 \rightarrow HBr + H^\cdot H⋅+Br2→HBr+Br⋅H^\cdot + Br_2 \rightarrow HBr + Br^\cdot
    • Termination: 2Br⋅→Br22Br^\cdot \rightarrow Br_2 (and other radical combinations)

    The overall reaction is the sum of these steps. It is not a single bimolecular collision between H2H_2 and Br2Br_2. Therefore, it is not an elementary reaction.

  3. Evaluate the Assertion

    "The molecularity of the reaction H2+Br2→2HBrH_2 + Br_2 \rightarrow 2HBr appears to be 2."

    This is true: if you only see the balanced equation, you'd think two molecules (one H2H_2 and one Br2Br_2) are involved. The word "appears" is key — it acknowledges that this is only a superficial observation.

  4. Evaluate the Reason …

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