Q. Which of the following rate law corresponds to the data shown for the reaction?

Experiment $\left[Al_{0} = M$ $\left[\right.B\left]\right._{0}=M$ Initial rate

$1$ $0.012$ $0.035$ $0.10$

$2$ $0.024$ $0.070$ $0.80$

$3$ $0.024$ $0.035$ $0.10$

$4$ $0.012$ $0.070$ $0.80$

NTA AbhyasNTA Abhyas 2020 Report Error

A

Rate $=k\left[\right.A\left]\right.^{0}\left[\right.B\left]\right.^{3}$

B

Rate $=k\left[\right.B\left]\right.^{4}$

C

Rate $=k\left[\right.A\left]\right.\left[\right.B\left]\right.^{3}$

D

Rate $=k\left[A^{2}\right]\left[\right.B\left]\right.^{2}$

Solution:

$\frac{\text{ Expt. } 4}{\text{ Expt. } 1}=\frac{\left[\right. 0 . 012 \left]\right.^{x} \left[\right. 0 . 070 \left]\right.^{y}}{\left[\right. 0 . 012 \left]\right.^{x} \left[\right. 0 . 035 \left]\right.^{y}}=\frac{0 . 80}{0 . 10}$
$2^{y}=8\Rightarrow y=3$
$\frac{\text{ Expt. } 3}{\text{ Expt. } 1}=\frac{\left[\right. 0 . 024 \left]\right.^{x} \left[\right. 0 . 035 \left]\right.^{3}}{\left[\right. 0 . 012 \left]\right.^{x} \left[\right. 0 . 035 \left]\right.^{3}}=\frac{0 . 10}{0 . 10}$
$2^{x}=1\Rightarrow x=0$
Rate $=k\left[\right.A\left]\right.^{0}\left[\right.B\left]\right.^{3}$ .

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