Chemistry Question on Chemical Kinetics

Question

The half-life for the reaction $N _{2} O _{5} \longrightarrow 2 NO _{2}+\frac{1}{2} O _{2}$ is $2.4\, h$ at STP. Starting with $10.8\, g$ of $N _{2} O _{5}$ how much oxygen will be obtained after a period of $9.6\, h$ ?

Answer 1

Solution

Moles of $N _{2} O _{5}=\frac{10.8}{108}=0.1$ and, $n=\frac{9.6}{2.4}=4$ here $n=$ numbers of half-life. $N _{2} O _{5} \longrightarrow 2 NO _{2}+\frac{1}{2} O _{2}$ $\therefore N_{t}=0.1 \times\left(\frac{1}{2}\right)^{n}$ Moles of $N _{2} O _{5}$ left $=\frac{0.1}{16}$ Moles of $N _{2} O _{5}$ changed to product $=\left(0.1-\frac{0.1}{16}\right)=\frac{1.5}{16} mol$ Moles of $O _{2}$ formed $=\frac{1.5}{16} \times \frac{1}{2}=\frac{1.5}{32}$ Volume of oxygen $=\frac{1.5}{32} \times 22.4$ $=1.05\, L$