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Q.The addition of catalyst during a chemical reaction alters which of the following quantities of the reaction ? (A) Enthalpy (B) Activation energy (C) Entropy (D) Internal energy

CBSECBSE Class XII Board 2024MCQ· 1mImportance★★★★★
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A catalyst provides an alternative reaction pathway with a lower activation energy barrier, speeding up both forward and reverse reactions without changing the thermodynamic properties of reactants or products. The answer is (B) Activation energy.

Why catalysts work: the energy landscape

Chemical reactions occur when reactant molecules collide with enough energy to break existing bonds and form new ones. The minimum energy required for this transformation is the activation energy EaE_a. Think of it as an energy hill that molecules must climb before they can slide down into the product valley.

A catalyst doesn't push molecules harder or change where they start and end. Instead, it offers a different route over a lower hill—a new mechanism with intermediate steps that require less energy to traverse. The reactants and products remain chemically identical, so their inherent energy content (enthalpy, internal energy) and disorder (entropy) are unchanged.

Examining each quantity

Let's see what a catalyst does and doesn't alter:

  1. Activation energy EaE_a

    This is precisely what a catalyst reduces. By stabilizing the transition state or forming intermediate complexes, the catalyst lowers the energy barrier. For example, enzymes in biological systems can reduce EaE_a by factors of 10610^6 or more, which is why reactions that would take years occur in milliseconds in living cells.

  2. Enthalpy ΔH\Delta H

    Enthalpy change is the difference in heat content between products and reactants:

ΔH=Hproducts−Hreactants\Delta H = H_{\text{products}} - H_{\text{reactants}}

Since the catalyst doesn't change the chemical identity of reactants or products, their bond energies and hence their enthalpies remain the same. The reaction is still exothermic or endothermic by the same amount.

  1. Entropy ΔS\Delta S

    Entropy measures the disorder or number of accessible microstates. The initial and final states of the system are identical with or without a catalyst, so ΔS\Delta S for the overall reaction is unchanged. The catalyst may create transient intermediate states, but these don't affect the entropy difference between reactants and products.

  2. Internal energy ΔU\Delta U

    Internal energy is related to enthalpy by ΔH=ΔU+Δ(PV)\Delta H = \Delta U + \Delta(PV). For the same reason enthalpy is unaffected, internal energy change is also constant. The thermodynamic state functions depend only on the initial and final states, not the path taken. …

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