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Q.What do you understand by first order reaction? The time taken in becoming 0.4 mol L−10.4\ \text{mol L}^{-1} from initial concentration of 0.6 mol L−10.6\ \text{mol L}^{-1} is 5 minutes in a first order reaction. How much time will be required for the initial concentration to reach 0.3 mol L−10.3\ \text{mol L}^{-1}?

Uttar Pradesh UpmspUP Board (UPMSP) Intermediate 2024Subjective· 3mImportance★★★★★
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Find kk from the first-order integrated law using the given data (k≈0.081 min−1k\approx0.081\ \text{min}^{-1}), then use it to get the time for 0.6→0.3 mol L−10.6\to0.3\ \text{mol L}^{-1}, which is one half-life ≈8.55\approx 8.55 min.

Concept — first-order reaction. A reaction is first order when its rate depends on the first power of the concentration of a single reactant: rate=k[A]\text{rate}=k[A]. Its integrated rate law is

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

Step 1 — evaluate kk from [A]0=0.6[A]_0=0.6, [A]=0.4 mol L−1[A]=0.4\ \text{mol L}^{-1} in t=5 mint=5\ \text{min}:

k=2.3035log⁡0.60.4=0.4606×log⁡(1.5)=0.4606×0.1761=0.0811 min−1k=\dfrac{2.303}{5}\log\dfrac{0.6}{0.4}=0.4606\times\log(1.5)=0.4606\times0.1761=0.0811\ \text{min}^{-1}

Step 2 — time for [A]0=0.6→[A]=0.3 mol L−1[A]_0=0.6\to[A]=0.3\ \text{mol L}^{-1}. …

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