For a reation: `A rarr` Product,
rate law is `-(d[A])/(dt)=K[A]_(0)`.
The concentration of `A` left after time `t` when `t=1/K` is:

For a reaction 2A + B rarr product, rate law is -(d[A])/(dt)=k[A] . At a time when t=(1)/(k) , concentration of the reactant is " (C_(0)="initial concentration")

For a hypothetical reaction: A+B rarr Products, the rate law is r = k[A][B]^(0) . The order of reaction is

The reaction A+OH^(-)rarr Products, obeys rate law expression as : (-d[A])/(dt)=k[A][OH^(-\)] If initial concentrations of [A] and [OH^(-)] are 0.02 M and 0.3 M respectively and if it takes 30 sec for 1% A to react at 25^(@)C , caclutate the rate constant for the reaction

For reaction, A rarr B, the rate law is rate = k[A]. If the reaction is 40.0% complete after 50.0 minutes, what is the value of the rate constant, k?

For a first order reaction -(d[A])/(dt)=K[A]_(0) . The reaction is carried out by taking 100 mol//litre of A, then concentration of A decayed after time 1/K is:

[A] = reactant concentration at time 't', k = rate constant