If the rate constants of a reaction at $500 \ K$ and $700 \ K$ are $0.002 \ s^{-1}$ and $0.06 \ s^{-1}$,respectively,the value of activation energy is $(R=8.314 \ J \ mol^{-1} \ K^{-1}, \log 3=0.477)$.

  • A
    $49.49 \ kJ \ mol^{-1}$
  • B
    $98.98 \ kJ \ mol^{-1}$
  • C
    $24.75 \ kJ \ mol^{-1}$
  • D
    $12.37 \ kJ \ mol^{-1}$

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The following equation is obtained for a first order reaction at $300 \ K$.
$\log_{10} \frac{k}{A} = 0.00174$
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The energy profile diagram for a multi-step reaction,$A$ $\xrightarrow{1} B$ $\xrightarrow{2} C$ $\xrightarrow{3} D,$ is given below. The rate-determining step of the reaction is:

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