The activation energy of a reaction is 75.2 kJ `mol^(-1)` in the absence of a catalyst and 50.14 kJ `mol^(-1)` in the presence of a catalyst. How many times will the reaction grow in the presence of catalyst if the reaction proceeds at `25^(@)`C ?

The activation energy of a reaction is 75.2 kJ `mol^(-1)` in the absen

1.	The activation energy of a reaction is 75.2 kJ `mol^(-1)` in the absence of a catalyst and 50.14 kJ `mol^(-1)` in the presence of a catalyst. How many times will the reaction grow in the presence of catalyst if the reaction proceeds at `25^(@)`C ?
Answer» Let the rate constant in the absence of catalyst = `k_(1)` Let the rate constant in the presence of catalyst = `k_(2)` Activation energy in the absence of catalyst `(E_(1)) = 75.2 kJ mol^(-1)` Activation energy in the presence of catalyst `(E_(2)) = 50.14 kJmol^(-1)` According to Arrhenius equation, `k_(1) = Ae^(-E1//RT), k_(2)= Ae^(-E2//RT)` `k_(2)/k_(1) = e^((E_(1)-E_(2)//RT))` or ln `k_(2)/k_(1)= (E_(1)-E_(2))/(RT)` `log K_(2)/K_(1) = (E_(1)-E_(2))/(RT)` `=((75.3-50.14) xx (10^(3)Jmol^(-1)))/(2.303 xx (8.314 JK^(-1)mol^(-1) xx 298K)) = 4.391` `k_(2)/k_(1)= "Antilog" 4.391 = 24604` or `k_(2) = 24604 k_(1)` Thus, the reaction rate has increased nearly by 24604 times.

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The activation energy of a reaction is 75.2 kJ `mol^(-1)` in the absence of a catalyst and 50.14 kJ `mol^(-1)` in the presence of a catalyst. How many times will the reaction grow in the presence of catalyst if the reaction proceeds at `25^(@)`C ?

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