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Q.A first-order reaction takes 20 minutes for 25% decomposition. Calculate the time when 75% of the reaction will be completed.

Meghalaya MboseMBOSE Meghalaya Intermediate Board 2020Subjective· 2mImportance★★★★★
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Using the first-order integrated rate law twice — once to extract kk from the 20-minute/25% data, then again to solve for the time needed to reach 75% decomposition — gives about 96.4 minutes.

For a first-order reaction:

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

Step 1 — find kk from the 25%-decomposition data (t=20t = 20 min, so 75% of [R]0[R]_0 remains):

k=2.30320log⁡10075=2.30320×0.1249=0.01439 min−1k = \frac{2.303}{20}\log\frac{100}{75} = \frac{2.303}{20}\times 0.1249 = 0.01439\ \text{min}^{-1}

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