For a first-order reaction, the time required for 99.9% completion () is approximately how many time — Chemical Kinetics Chemistry Question
Question
For a first-order reaction, the time required for 99.9% completion ($t_{99.9\%}$) is approximately how many times its natural half-life ($t_{1/2}$)?
Answer: A
💡 Solution & Explanation
For a first-order reaction, $t_{99.9\%} = \frac{2.303}{k} \log \frac{100}{100 - 99.9} = \frac{2.303}{k} \log 10^3 = \frac{3 \times 2.303}{k} = \frac{6.909}{k}$. Since $t_{1/2} = \frac{0.693}{k}$, the ratio is $6.909 / 0.693 \approx 10$. Thus $t_{99.9\%} \approx 10 \times t_{1/2}$.
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