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Question 37 of 45

Q.What is the Order of chemical reaction? Deduce the mathematical expression for half-life period of a First Order Decomposition Reaction in which 30% of the reaction is completed in 40 minutes. (1+2) OR State the unit of the rate constant of the Zero Order Reaction. Establish the integrated rate equation of a Zero Order Reaction involving a single reactant. (1+2)

West Bengal WbchseWest Bengal HS (WBCHSE) Board 2022Subjective· 3mImportance★★★★★
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Order of reaction = sum of exponents in the experimental rate law. For a first-order reaction, t1/2=0.693/kt_{1/2}=0.693/k — first compute k from the given data (30% reacted in 40 min), then find t1/2≈77.7t_{1/2}\approx77.7 min.

Order of a chemical reaction: For a reaction with rate law Rate=k[A]m[B]n\text{Rate}=k[A]^m[B]^n, the order is m+nm+n — the sum of the powers to which the concentration terms are raised in the experimentally determined rate expression (it need not equal the stoichiometric coefficients, and can be zero, fractional, or a whole number).

Deriving half-life for a first-order reaction:

For a first-order reaction, the integrated rate law is:

k=2.303tlog⁡[A]0[A]k=\frac{2.303}{t}\log\frac{[A]_0}{[A]}

At t=t1/2t=t_{1/2}, [A]=[A]02[A]=\dfrac{[A]_0}{2}, so:

k t1/2=2.303log⁡2=0.693  ⟹  t1/2=0.693kk\,t_{1/2}=2.303\log2=0.693 \implies t_{1/2}=\frac{0.693}{k}

This shows t1/2t_{1/2} is independent of initial concentration for a first-order reaction.

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