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Q.What is a zero-order reaction? Generate the formula for the rate constant for this reaction.

Chhattisgarh CgbseCGBSE Intermediate Board 2025Subjective· 3mImportance★★★★★
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In a zero-order reaction the rate does not change with concentration; integrating the rate law gives [A]=[A]0−kt[A] = [A]_0 - kt, from which kk is obtained.

Definition: A zero-order reaction is one whose rate is independent of the concentration of the reactant(s) — i.e., the rate remains constant throughout the reaction as long as some reactant is present.

For a reaction A → Products, of zero order:

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

Derivation of the integrated rate equation:

−d[A]=k dt-d[A] = k \, dt

Integrating between initial concentration [A]0[A]_0 at t=0t=0 and concentration [A][A] at time tt:

∫[A]0[A]−d[A]=∫0tk dt\int_{[A]_0}^{[A]} -d[A] = \int_0^t k \, dt

[A]0−[A]=kt[A]_0 - [A] = kt

So the integrated rate law is:

[A]=[A]0−kt[A] = [A]_0 - kt

Rearranging for the rate constant:

k=[A]0−[A]tk = \dfrac{[A]_0 - [A]}{t}

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