<u>Answer:</u> The rate law for the overall reaction is
<u>Explanation:</u>
In a mechanism of the reaction, the slow step in the mechanism determines the rate of the reaction.
For the given chemical reaction:
The intermediate reaction of the mechanism follows:
<u>Step 1:</u>
<u>Step 2:</u>
<u>Step 3:</u>
As, step 2 is the slow step. It is the rate determining step.
Rate law for the reaction follows:
......(1)
As, [Cl] is not appearing as a reactant in the overall reaction. So, we apply steady state approximation in it.
Applying steady state approximation for Cl from step 1 and step 3, we get:
Putting the value of [Cl] in equation 1, we get:
Hence, the rate law for the overall reaction is