A first order reaction has rate constants of #4.6xx"10"^(-2)" s"^(-1)"# and #8.1xx"10"^(-2)" s"^(-1)"# at 0 degrees Celsius and 20 degrees Celsius, respectively. What is the value of the activation energy?

1 Answer
Mar 5, 2018

18.81 kJ/mole

Explanation:

We have Arrhenius equation,
#k= A*e^(E/(RT))#
where #k# is rate constant
#A# is Arrhenius constant
#E# is Activation Energy and
#T# is Temperature

We have T(1) = 273 K and T(2) = 293 K
#k(1) = 4.6 *10^-2 s^-1#
#k(2) = 8.1 *10^-2 s^-1#

#(4.6 *10^-2)/(8.1*10^-2)=e^(-E/R(1/(273)-1/293))#

with # R=8.314 (kJ)/(mol. K) #
we get #E = 18.81 (kJ)/(mol)#