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Q.Explain the order of reaction and molecularity of reaction, each with an example.

Uttarakhand UbseUttarakhand Board Intermediate (Class 12) 2024Subjective· 2mImportance★★★★★
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Order is an experimental quantity from the rate law; molecularity is a theoretical count of colliding species in an elementary step.

Order of reaction: The order of a reaction is the sum of the powers (exponents) of the concentration terms of the reactants appearing in the experimentally determined rate law. It is determined experimentally and can be zero, a fraction, or a whole number.

Example: for the reaction 2NO(g)+O2(g)→2NO2(g)2NO(g) + O_2(g) \rightarrow 2NO_2(g), the experimental rate law is Rate=k[NO]2[O2]1Rate = k[NO]^2[O_2]^1, so the order = 2+1=32+1 = 3 (third order).

Molecularity of reaction: Molecularity is the number of reacting species (atoms, ions, or molecules) that must collide simultaneously in a single elementary step to bring about a chemical reaction. It is a theoretical concept, applies only to elementary (single-step) reactions, and is always a positive whole number (1, 2, or rarely 3).

Example: decomposition of N2O5→N_2O_5 \rightarrow products is unimolecular (molecularity = 1); 2HI→H2+I22HI \rightarrow H_2 + I_2 is bimolecular (molecularity = 2).

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