The slope of straight line graph between ln k us `(1)/(T)` is equal to `2.4 xx 10^(4)K`. Calculate the activation energy of the reaction at 400 K. (K represents rate constant)

The graph between log k versus 1//T is a straight line.

The slope of a line in the graph of log k versus 1/T for a reaction is -5841 K. Calculate energy of activation for the reaction.

Calculate the activation energy of a reaction whose reaction rate at 300 K double for 10 K rise in temperature.

i) Write the mathematics expressions relating the variation of the rate constant of a reaction with temperatures. ii) How can you graphically find the activation energy of the reaction from the above expression? iii) The slope of the line in the graph of log k(k=rate constant) versus 1//T is -5841 . Calculate the activation energy of the reaction.

A plot of k vs 1//T for a reaction gives the slope -1 xx 10^(4) K. The energy of activation for the reaction is:

The rate constant of the reaction at temperature 200 K is 10 times less than the rate constant at 400 K. What is the activation energy of the reaction ?

The rate constant of a reaction at temperature 200 K is 10 times less than the rate constant at 400 K. What is the activation energy (E_(a)) of the reaction ? (R = gas constant)