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r=k[A]\mathrm{r}=\mathrm{k}[\mathrm{A}]r=k[A] for a reaction, 50%50 \%50% of A\mathrm{A}A is decomposed in 120 minutes. The time taken for 90%90 \%90% decomposition of A\mathrm{A}A is _________ minutes.
r=k[A]\mathrm{r}=\mathrm{k}[\mathrm{A}]\\r=k[A]
So, order of reaction =1=1\\=1
t1 / 2=120 min\mathrm{t}_{1 / 2}=120 \mathrm{~min}\\t1 / 2=120 min
For 90 %90 \%90 % completion of reaction
⇒ k=2.303t log (aa−x) ⇒ 0.693t1 / 2=2.303t log 10010 ∴ t=399 min . \\ \begin{aligned} & \Rightarrow \mathrm{k}=\frac{2.303}{\mathrm{t}} \log \left(\frac{\mathrm{a}}{\mathrm{a}-\mathrm{x}}\right) \\ & \Rightarrow \frac{0.693}{\mathrm{t}_{1 / 2}}=\frac{2.303}{\mathrm{t}} \log \frac{100}{10} \\ & \therefore \mathrm{t}=399 \mathrm{~min} . \end{aligned} ⇒ k=t2.303 log (a−xa) ⇒ t1 / 20.693=t2.303 log 10100 ∴ t=399 min .
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