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Q.Write the Arrhenius equation. Define threshold energy. The activation energy of two reactions are 50 kJ/mol and 25 kJ/mol respectively. Which reaction would take place at a faster rate?

Odisha ChseOdisha CHSE +2 Science Board Exam 2026Subjective· 3mImportance★★★★★
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k=Ae−Ea/RTk=Ae^{-E_a/RT}; a lower activation energy means faster rate, so the 25 kJ/mol reaction is faster than the 50 kJ/mol one.

The Arrhenius equation relates the rate constant kk of a reaction to temperature and activation energy:

k=Ae−Ea/RTk = Ae^{-E_a/RT}

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

Threshold energy is defined as the minimum amount of energy that the reacting molecules must possess (in total, at the moment of collision) in order for their collision to be effective, i.e. to result in the breaking of old bonds and formation of new bonds (product formation). It is related to activation energy by: Threshold energy = Activation energy (EaE_a) + Average kinetic energy of the reactant molecules. Only molecules whose energy exceeds this threshold, oriented correctly, react successfully on collision.

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