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Q.(a) What is activation energy?

(b) Determine the expression of rate constant for zero order reaction. OR
(a) What is threshold energy?
(b) Determine the expression of half-life period for first order reaction.
Chhattisgarh CgbseCGBSE Intermediate Board 2018Subjective· 4mImportance★★★★★
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(a) Activation energy is the energy barrier reactants must cross to react. (b) A zero order reaction's rate constant is derived by integrating rate = k.

(a) Activation energy (Ea): According to the Arrhenius/collision theory of reaction rates, not every collision between reactant molecules leads to a reaction — only those with sufficient energy and proper orientation do. Activation energy is defined as the minimum extra energy (over and above the average energy of the reactant molecules) that the colliding molecules must possess for the collision to successfully form products; it is the energy of the barrier (the activated complex/transition state) that must be crossed for reactants to be converted into products.

(b) Rate constant expression for a zero order reaction:

For a zero order reaction, A→ProductsA \rightarrow Products, the rate is independent of concentration:

Rate=−d[A]dt=k[A]0=kRate = -\frac{d[A]}{dt} = k[A]^0 = k

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