The reaction is said to be in first order when the reaction rate is linearly dependent upon reactant concentration. As the concentration doubles, the rate of the reaction also doubles.

Given as the percentage of inactivation is:

% inactivation  $=100\times \left(1-\frac{{\left[A\right]}_t}{{\left[A\right]}_0}\right)$

and,

  $\%inactivation=68.3$

So,

$$\begin{gathered} 68.3=100\times \left(1-\frac{{\left[A\right]}_t}{{\left[A\right]}_0}\right) \\ 0.683=1-\frac{{\left[A\right]}_t}{{\left[A\right]}_0} \\ \frac{{\left[A\right]}_t}{{\left[A\right]}_0}=1-0.683 \\ \frac{{\left[A\right]}_t}{{\left[A\right]}_0}=0.317 \end{gathered}$$ 

For first-order kinetics rate constant at t=0.50;

Given as the percentage of inactivation is:

% inactivation $=100\times \left(1-\frac{{\left[A\right]}_t}{{\left[A\right]}_0}\right)$ 

% inactivation=95

So,

 $$\begin{gathered} 95=100\left(1-\frac{{\left[A\right]}_t}{{\left[A\right]}_0}\right) \\ 0.95=\left(1-\frac{{\left[A\right]}_t}{{\left[A\right]}_0}\right) \\ \frac{{\left[A\right]}_t}{{\left[A\right]}_0}=1-0.95 \\ \frac{{\left[A\right]}_t}{{\left[A\right]}_0}=0.05 \end{gathered}$$

For first-order kinetics rate constant is -2.29;

$$\begin{gathered} ln{\left[A\right]}_t=Kt+ln{\left[A\right]}_0 \\ 2.303 log\frac{{\left[A\right]}_t}{{\left[A\right]}_0}=Kt \\ 2.303log0.05=-2.29\left(t\right) \\ 2.303(-1.3)=-2.29\left(t\right) \\ -2.99=-2.29\left(t\right) \\ t=1.30s \end{gathered}$$