Answer : The value of activation energy for this reaction is 108.318 kJ/mol
Explanation :
The Arrhenius equation is written as:
![K=A* e^{(-Ea)/(RT)}](https://img.qammunity.org/2020/formulas/chemistry/college/pmkqkni0a9qzumfcmdu8y6ars2i5a153qe.png)
Taking logarithm on both the sides, we get:
............(1)
where,
k = rate constant =
![2.95* 10^(-3)L/mol.s](https://img.qammunity.org/2020/formulas/chemistry/college/v2whrglajzex4gky9tajwovvpgunved5rh.png)
Ea = activation energy = ?
T = temperature = 435 K
R = gas constant = 8.314 J/K.mole
A = pre-exponential factor =
![3.00* 10^(+10)L/mol.s](https://img.qammunity.org/2020/formulas/chemistry/college/lvkglfbxabvss4c40jz5z9pj6sinsqs4wz.png)
Now we have to calculate the value of rate constant by putting the given values in equation 1, we get:
![\ln (2.95* 10^(-3)L/mol.s)=-(Ea)/(8.314J/K.mol* 435K)+\ln (3.00* 10^(10)L/mol.s)](https://img.qammunity.org/2020/formulas/chemistry/college/4t8uuvye49tzad4fvhalnt3kz4b8i65abo.png)
![Ea=108318.365J/mol=108.318kJ/mol](https://img.qammunity.org/2020/formulas/chemistry/college/n43mb5qumqowkpulvj8pqtbagby03tb309.png)
Therefore, the value of activation energy for this reaction is 108.318 kJ/mol