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Q.When a catalyst increases the rate of a chemical reaction, then the rate constant (k) : (A) remains constant (B) decreases (C) increases (D) may increase or decrease depending on the order of the reaction

CBSECBSE Class XII Board 2024MCQ· 1mImportance★★★★★
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A catalyst lowers the activation energy, which directly increases the rate constant kk through the Arrhenius equation. The answer is (C).

The rate constant kk is not just a number we measure—it encodes how the molecular-scale energy barrier controls reaction speed. To see why a catalyst must increase kk, we need the Arrhenius equation.

k=Ae−Ea/RTk = A e^{-E_a/RT}

where AA is the pre-exponential factor, EaE_a is the activation energy, RR is the gas constant, and TT is temperature.

This equation tells us that kk depends exponentially on the activation energy. A catalyst works by providing an alternative reaction pathway with a lower EaE_a—it doesn't change the thermodynamics (reactants and products stay the same), but it reduces the energy hill molecules must climb to react.

Step-by-step reasoning

  1. What a catalyst does at the molecular level

    A catalyst participates in the reaction mechanism but is regenerated at the end. It creates intermediate steps with lower energy barriers than the uncatalyzed path. The net effect: EaE_a (catalyst) <Ea< E_a (no catalyst).

  2. Impact on the exponential term

    When EaE_a decreases, the exponent −Ea/RT-E_a/RT becomes less negative (closer to zero). Since exe^x is an increasing function, e−Ea/RTe^{-E_a/RT} becomes larger.

  3. The pre-exponential factor AA

    This factor relates to collision frequency and orientation. A catalyst typically doesn't change AA significantly—the main effect is on EaE_a.

  4. Independence from reaction order

    The rate constant kk appears in the rate law (e.g., rate=k[A]n\text{rate} = k[A]^n), but its value is determined by the Arrhenius equation, not by the order nn. The order tells us how concentration affects rate; the activation energy tells us the intrinsic speed at given concentrations. A catalyst lowers EaE_a regardless of whether the reaction is zeroth, first, second, or any other order.

  5. Quantitative example

    Suppose Ea=100 kJ/molE_a = 100 \, \text{kJ/mol} without catalyst and Ea=50 kJ/molE_a = 50 \, \text{kJ/mol} with catalyst at T=300 KT = 300 \, \text{K} (with R=8.314 J/(mol⋅K)R = 8.314 \, \text{J/(mol·K)}): …

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