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Question 38 of 45

Q.What is the molecularity of the reaction? Establish the integrated rate equation of the First Order Reaction. (2+3) OR State with individual units of rate of reaction, rate constant and half-life of the First Order Reaction. (2+1.5+1.5)

West Bengal WbchseWest Bengal HS (WBCHSE) Board 2022Subjective· 5mImportance★★★★★
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Molecularity is the (theoretical, whole-number) count of reacting species colliding in one elementary step; the first-order integrated rate equation follows from integrating −d[A]/dt=k[A]-d[A]/dt = k[A].

Molecularity: The molecularity of an elementary reaction is the number of reactant molecules, atoms, or ions that must collide simultaneously to bring about that chemical change in a single step. It is a theoretical concept deduced from the reaction mechanism, is always a positive whole number (1, 2, or rarely 3), and applies strictly to a single elementary step (a complex/multi-step reaction as a whole does not have a single molecularity — its slowest step does).

Deriving the integrated rate equation for a first-order reaction:

For a first-order reaction A→productsA \to \text{products}, the rate law is:

−d[A]dt=k[A]-\frac{d[A]}{dt}=k[A]

Separate variables and integrate between [A]0[A]_0 at t=0t=0 and [A][A] at time tt:

−∫[A]0[A]d[A][A]=k∫0tdt-\int_{[A]_0}^{[A]}\frac{d[A]}{[A]}=k\int_0^t dt …

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