The specific reaction rates of a chemical reaction are `2.45xx10^(-5)sec^(-1)" at "273K` and `16.2 xx10^(-4) sec^(-1)` at 303 K. Calculate the activation energy.

In a reversible reaction the rate constants of the forward and the backward reactions are 4.8xx10^(-5)s^(-1)and1.2xx10^(-4)s^(-1) respectively. Calculate the equilibrium constant.

The rate constant of a first order reaction at 300 K and 310 K are respectively 1.2 xx 10^(3) s^(-1) and 2.4 xx 10^(3) s^(-1) . Calculate the energy of activation. (R = 8.314 J K^(-1) mol^(-1))

For a reaction, E_(a)=0 and k=4.2xx10^(5)sec^(-1)" at "300K , the value of k at 310 K will be

Rate constant for a reaction is 1.85 xx 10^(2)s^(-1) . Give the order of reaction.

The rate of most reactions becomes double when their temperature is raised from 298 K to 308 K. Calculate their activation energy.

Rate constant of a first order reaction is 0.45 sec^(-1) , calculate its half life.

For the reaction : N_(2)O_(4)(g)hArr 2NO_(2)(g) the concentration of the equilibrium mixture at 300 K are [N_(2)O_(4)]=4.8xx10^(-2)mol L^(-1) and [NO_(2)]=1.2xx10^(-2)mol L^(-1). K_(c ) for the reaction is :