MHT CET · Chemistry · Chemical Kinetics
Calculate the amount of reactant in percent that remains after 60 minutes involved in first order reaction. \(\left(\mathrm{k}=0.02303\right.\) minute \(\left.^{-1}\right)\)
- A \(25 \%\)
- B \(50 \%\)
- C \(75 \%\)
- D \(12.5 \%\)
Answer & Solution
Correct Answer
(A) \(25 \%\)
Step-by-step Solution
Detailed explanation
For a first order reaction,
\(\begin{aligned}
& k=\frac{0.693}{t_{1 / 2}} \\
& t_{1 / 2}=\frac{0.693}{0.02303}=30 \mathrm{~min}
\end{aligned}\)
Percent of reactant that remains after \(t_{1 / 2}=50 \%\). \(2 \times \mathrm{t}_{1 / 2}=60 \mathrm{~min}\)
Therefore, percent of reactant that remains after \(2 \mathrm{t}_{1 / 2}=25 \%\)
\(\begin{aligned}
& k=\frac{0.693}{t_{1 / 2}} \\
& t_{1 / 2}=\frac{0.693}{0.02303}=30 \mathrm{~min}
\end{aligned}\)
Percent of reactant that remains after \(t_{1 / 2}=50 \%\). \(2 \times \mathrm{t}_{1 / 2}=60 \mathrm{~min}\)
Therefore, percent of reactant that remains after \(2 \mathrm{t}_{1 / 2}=25 \%\)
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