Answer:
The initial concentration of ethanal was 0.1590 mol/L.
Explanation:
Integrated rate law for second order kinetic:
[tex]k=\frac{1}{t}(\frac{1}{[A]}-\frac{1}{[A]_o})[/tex]
k = Rate constant =[tex]6.73\times 10^{-3} L mol s[/tex]
t = Time elapsed = 50.0 s
[tex][A]_o[/tex] =initial concentration of ethanal
[A] = Concentration of ethanal left after time t = 0.151 mol/L
On substituting the value:
[tex]6.73\times 10^{-3} L mol s=\frac{1}{50.0 s}(\frac{1}{0.151 mol/L}-\frac{1}{[A_o]})[/tex]
[tex][A]_o=0.1590 mol/L[/tex]
The initial concentration of ethanal was 0.1590 mol/L.
