Identify the rate law expression for the reaction $2 NO_{(g)} + Cl_{2(g)} \rightarrow 2 NOCl_{(g)}$ if the reaction is second order in $NO$ and first order in $Cl_2$.

  • A
    Rate $= k[NO]^2 [Cl_2]$
  • B
    Rate $= k[NO][Cl_2]$
  • C
    Rate $= k[NO]^2$
  • D
    Rate $= k[Cl_2]$

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$Zn + 2H^{+} \to Zn^{2+} + H_2$
The half-life period is independent of the concentration of zinc at constant $pH$. For the constant concentration of $Zn$,the rate becomes $100$ times when $pH$ is decreased from $3$ to $2$. Identify the correct statements $(pH = -\log [H^{+}])$:
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