Question
Question: A first order reaction is 50 percent completed in two minutes at \({{27}^{0}}C\). and 5 minutes at \...
A first order reaction is 50 percent completed in two minutes at 270C. and 5 minutes at 470C. The energy is activation of the reaction is:
A. 43.85 KJ/mol
B. 55.26KJ/mol
C. 11.97 KJ/mol
D. 6.65 KJ/mol
Explanation
Solution
You need to remember that for any reaction, the value of T×K remains constant, where T is the time and K is the rate constant. After that, use the formula involved with the Arrhenius equation.
Complete step by step answer:
In order to calculate the activation energy of the reaction, we will start from the basic knowledge we know. Now, as we know that for any reaction, T×Kremains constant so we can write it as:
T1×K1=T2×K2, so
20×K1=5×K2
Which means that K1K2=4……….( I )
- Let us convert the respective temperatures in celsius to K
So,