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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 correct statements, and Reason (R) is the correct explanation of the Assertion (A). (B) Both Assertion (A) and Reason (R) are correct statements, but Reason (R) is not the correct explanation of the Assertion (A). (C) Assertion (A) is correct, but Reason (R) is incorrect statement. (D) Assertion (A) is incorrect, but Reason (R) is correct statement.

CBSECBSE Class XII Board 2020MCQ· 1mImportance★★★★★
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The assertion is correct — the molecularity appears to be 2 from the balanced equation — but the reason is wrong because this is not an elementary reaction; it proceeds via a complex mechanism, so molecularity cannot be assigned from the overall equation.

Let’s unpack this carefully. The question tests a subtle but critical distinction in chemical kinetics: the difference between molecularity and order, and the condition under which molecularity can be stated.


1. What does molecularity mean?

Molecularity is the number of molecules (atoms, ions, or species) that collide in the rate-determining step of an elementary reaction. It is always a small, positive integer (1, 2, or rarely 3). Crucially, molecularity can only be defined for an elementary step — a reaction that occurs in a single collision event.

Important

Molecularity is a property of an elementary reaction, not of an overall balanced equation. You cannot read molecularity from the stoichiometric coefficients unless you know the reaction is elementary.


2. Is the given reaction elementary?

The reaction

H2+Br2→2HBrH_2 + Br_2 \rightarrow 2HBr

looks simple, but it is not elementary. In fact, it is a classic example of a complex reaction with a well-known free-radical chain mechanism:

  • Initiation: Br2→hv2Br⋅Br_2 \xrightarrow{hv} 2Br^\cdot
  • 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, etc.

The overall stoichiometry is H2+Br2→2HBrH_2 + Br_2 \rightarrow 2HBr, but the reaction never involves a direct collision between one H2H_2 and one Br2Br_2 molecule. Therefore, molecularity cannot be assigned to the overall reaction.

Watch out

A common mistake: assuming that the coefficients in a balanced equation give the molecularity. This is only true if the reaction is elementary — which is rarely the case in organic or inorganic reactions unless explicitly stated.


3. Evaluating Assertion (A)

Assertion (A) says: “The molecularity of the reaction H2+Br2→2HBrH_2 + Br_2 \rightarrow 2HBr appears to be 2.” …

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