The half-life values for two different first-order reactions $A$ and $B$ are $75 \ min$ and $2.5 \ h$ respectively. What is the ratio of their rate constants $\frac{k_A}{k_B}$?

  • A
    $2.0$
  • B
    $4.5$
  • C
    $14.2$
  • D
    $22.0$

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The following results are obtained in one pseudo first order reaction:
Time $(s)$ $0$ $30$ $60$ $90$
Concentration $(mol \ L^{-1})$ $0.551$ $0.312$ $0.173$ $0.085$

$(a)$ Calculate the average rate of reaction between $30$ and $60$ seconds.
$(b)$ Calculate the rate constant $(k)$ of this first order reaction.

Identify $True$ $(T)$ and $False$ $(F)$ statements of the following for a first order reaction $R \rightarrow P$.
$I. \log \frac{[R]}{[R]_0} = -\frac{kt}{2.303}$
$II. \log \frac{[R]}{[R]_0} = \frac{kt}{2.303}$

When methyl acetate is hydrolyzed in $0.05 \, M$ $HCl$,the reaction occurs as follows: $CH_3COOCH_3 + H_2O \rightarrow CH_3COOH + CH_3OH$. $A$ $25 \, mL$ sample of the reaction mixture is taken at different time intervals,added to ice to stop the reaction,and then titrated with $0.05 \, M$ $NaOH$ solution. Prove that the reaction is first order using the data provided below:
Time (minute) $0$ $20$ $75$ $120$ $\infty$
Volume of $0.05 \, M$ $NaOH$ ($V_t$ in $mL$) $24.40$ $25.82$ $29.35$ $31.75$ $47.50$

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For the thermal decomposition of $N_2O_{5(g)}$ at constant volume,the following table can be formed for the reaction mentioned below:
$2N_2O_{5(g)} \rightarrow 2N_2O_{4(g)} + O_{2(g)}$
$S.NO$$Time/s$Total pressure $(atm)$
$1.$$0$$0.6$
$2.$$100$$X$

$X = . . . . . . \times 10^{-3} \ atm$ [nearest integer]
Given: Rate constant for the reaction is $4.606 \times 10^{-2} \ s^{-1}$.

Which of the following is a correct statement for a first-order reaction?

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