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Q.The half-life of a first order reaction is 20 minutes. Calculate the time required for the concentration of the reactant to fall from 0.8(M) to 0.01(M).

Tripura TbseHigher Secondary (+2 Stage) Examination 2025Subjective· 2mImportance★★★★★
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Using the first-order rate law with k found from the half-life, the time to go from 0.8M to 0.01M works out to about 126.5 minutes.

Step 1 - find k from the half-life. For a first order reaction, k = 0.693 / t(1/2) = 0.693 / 20 min = 0.03465 min^-1.

Step 2 - apply the first-order integrated rate law. t = (2.303/k) log([A]0/[A]t)

Here [A]0 = 0.8 M and [A]t = 0.01 M, so [A]0/[A]t = 0.8/0.01 = 80.

t = (2.303 / 0.03465) x log(80)

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