Question:medium

For the reaction NO$_2$Cl $\rightarrow$ NO$_2$ + $\frac{1}{2}$Cl$_2$, the proposed mechanism involves the following two elementary steps:
NO$_2$Cl $\xrightarrow{k_1}$ NO$_2$ + Cl
NO$_2$Cl + Cl $\xrightarrow{k_2}$ NO$_2$ + Cl$_2$
Assuming steady state approximation for Cl, the correct expression for the rate of formation of NO$_2$ is

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In steady state approximation, rate of formation of intermediate = rate of consumptionUse this to eliminate intermediate concentration
Updated On: Jun 1, 2026
  • $\frac{d[\text{NO}_2]}{dt} = 2k_1[\text{NO}_2\text{Cl}]$
  • $\frac{d[\text{NO}_2]}{dt} = \left(\frac{k_1}{k_2}\right)[\text{NO}_2\text{Cl}]$
  • $\frac{d[\text{NO}_2]}{dt} = (k_1 + k_2)[\text{NO}_2\text{Cl}]$
  • $\frac{d[\text{NO}_2]}{dt} = (k_1k_2)[\text{NO}_2\text{Cl}]$
Show Solution

The Correct Option is A

Solution and Explanation

Step 1: Write the rate of NO$_2$.
\[ \text{Rate} = k_1[\text{NO}_2\text{Cl}] + k_2[\text{NO}_2\text{Cl}][\text{Cl}] \]

Step 2: Steady state for chlorine.
Setting the change in chlorine to zero gives $[\text{Cl}] = k_1/k_2$.

Step 3: Substitute and simplify.
\[ \text{Rate} = k_1[\text{NO}_2\text{Cl}] + k_1[\text{NO}_2\text{Cl}] = 2k_1[\text{NO}_2\text{Cl}] \]

Step 4: Answer.
\[ \boxed{2k_1[\text{NO}_2\text{Cl}]} \]
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