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Q.What is meant by a zero order reaction? Give an example of such a reaction. Establish the integrated rate equation for a zero order reaction involving a single reactant. How can the rate constant be determined using this equation? OR Write down the Arrhenius equation relating the rate constant of a reaction with temperature, mentioning what the terms indicate. If k1 and k2 be the rate constants of a reaction at temperatures t1°C and t2°C respectively, find out the relation between k1, k2, t1 and t2. Given that the activation energy (Ea) of the reaction remains unchanged within the temperature range mentioned. The rate constants of a reaction at 400 K and 500 K are 0.02 s⁻¹ and 0.08 s⁻¹ respectively. Determine the activation energy (Ea) of the reaction.

West Bengal WbchseWest Bengal HS (WBCHSE) Board 2016Subjective· 5mImportance★★★★★
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A zero order reaction's rate does not depend on concentration; integrating −d[A]/dt=k-d[A]/dt=k gives [A]=[A]0−kt[A]=[A]_0-kt, a straight line whose slope (−k) yields the rate constant.

Zero order reaction: A reaction is said to be of zero order when its rate is independent of the concentration of the reactant(s) — the rate remains constant throughout the reaction as long as some reactant is present. This typically happens when the rate-determining step doesn't involve the reactant in question directly, e.g., in surface-catalysed or photochemical reactions where the rate is controlled by something other than concentration (like available catalyst surface area or light intensity).

Example: the thermal decomposition of ammonia on a hot platinum (or tungsten) surface, 2NH3→Pt,ΔN2+3H22NH_3 \xrightarrow{Pt, \Delta} N_2 + 3H_2, is zero order in NH₃ at high pressure, because the platinum surface is already saturated with adsorbed NH₃ molecules, so the rate depends only on the surface area, not on the gas-phase NH₃ concentration.

Integrated rate equation: For a single reactant A, the rate law is:

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

Rearranging and integrating from t=0t=0 (concentration [A]0[A]_0) to time tt (concentration [A][A]): …

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