Decomposition of is a first order reaction at and is given by .
In a closed vessel, is allowed to decompose at . After , the total pressure was . What is the rate constant (in ) of the reaction ? ()
- A
- B
- C
- D
Decomposition of is a first order reaction at and is given by .
In a closed vessel, is allowed to decompose at . After , the total pressure was . What is the rate constant (in ) of the reaction ? ()
Correct answer:D
Standard Method
Given: Reaction is . Initial pressure of is in a closed vessel. After , the total pressure is .
Find: The first-order rate constant .
For a first-order gas-phase reaction, use
So we first need the partial pressure of after .
Let the decrease in pressure of be . Then
Hence total pressure at time is
Given
Therefore,
Rate Constant Calculation
Now the partial pressure of after is
Substitute in the first-order equation:
Since
and ,
Therefore, the rate constant is and the correct option is D.
Using the total pressure directly in the first-order formula is incorrect because the formula requires the partial pressure of reactant , not the total pressure. First find from the stoichiometry of the reaction.
Assuming the total pressure remains equal to the initial pressure is wrong because one mole of forms two moles of gaseous products. The total number of moles increases, so total pressure increases during decomposition.
Taking instead of solving is a setup error. Since and , the correct extent is .
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