Plotting `log_(10)t_(1//2)` against `log _(10)[A_0]` (where `A_0` is the initial concentration of a reactant) for a fist order reaction the slope will be

For zero order reaction , t_(1//2) will be ( A_0 is the initial concentration , K is rate constant)

Following is the graph between log t_(1//2) and log a ( a initial concentration) for a given reaction at 300K Find the order of reaction.

For a reaction R rarr P , half -life (t_(1//2)) is observed to be independent of the initial concentration of reactants. What is the order of reaction ?

A graph between log t_((1)/(2)) and log a (abscissa), a being the initial concentration of A in the reaction For reaction Ato Product, the rate law is :

A graph between log t_((1)/(2)) and log a (abscissa), a being the initial concentration of A in the reaction For reaction Ato Product, the rate law is :

A plot of logarithm of rate vs logarithm of concentration of the reactant in a first order reaction is straight line whose slope is tan theta , where theta is

For a second order reaction, 2Ararr Products, a plot of log t_(1//2) vs log a (where a is initial concentration) will give an intercept equal to which one of the following?

Following is the graph between log T_(50) and log a ( a = initial concentration) for a given reaction at 27^(@)C . Hence order is

Which of the following is/are correct for the first order reaction ? (a is initial concentration of reactant, x is concentration of the reactant reacted and t is time)

Half life ( t_1 ) of the first order reaction and half life ( t_2 ) of the 2 ""^(nd) order reaction are equal. If initial concentration of reactants in both reaction are same then ratio of the initial rate of the reaction