The ratio of rate constants of a reaction at 300K and 291K is 2. Calcu – InterviewSolution

1.	The ratio of rate constants of a reaction at 300K and 291K is 2. Calculate the energy of activation. ("Given "R = "8.314JK"^(-1)" mol"^(-1)).
Answer» SOLUTION :To find activation ENERGY for the reaction Given `(K_(2))/(K_(1))=2, R=8.314, T_(1)=291K, T_(2)=300K` `LOG"" (K_(2))/(K_(1))=(E_(a))/(2.303R)[(T_(2)-T_(1))/(T_(1)T_(2))]` `log2=(E_(a))/(2.303xx8.314)[(300-291K)/(300xx291K)]` `E_(a)=(2.303xx8.314xxlog2xx300xx291)/(9)=55.9kJ`

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