Question

$H_2{O}_2+2KI\stackrel{40\%yield}{⟶}{I}_2+2KOH{H}_2{O}_2+2KMn{O}_4+3H_{2}S{O}_4\stackrel{50\%yield}{⟶}{K}_{2}S{O}_4+2MnS{O}_4+3O_2+4H_{2}O$
$150$ mL of $H_2{O}_2$ sample was divided into two parts. First part was treated with $KI$ and formed $KOH$ required $200$ mL of $\frac{M}{2}{H}_{2}S{O}_4$ for complete neutralisation. Other part was treated with $KMn{O}_4$ yielding $6.72$ litre of $O_2$ at $1$ atm. and $273$ K. Using $\%$ yeild indicated, find the volume strength of $H_2{O}_2$ sample used.

Answer 1

$\text{Moles of}{H}_{2}S{O}_4=0.2\times \frac{1}{2}mol=0.1mol$
$\text{Moles of used}KOH\text{will be}=0.1\times 2mol=0.2mol$
Again,
$H_2{O}_2+2KI\stackrel{40\%yield}{⟶}{I}_2+2KOH$
Moles of $H_2{O}_2$ used in first reaction
$=\frac{0.2}{2}\times \frac{1}{0.4}=0.25$
According to the question,
moles of produced $O_2=\frac{6.72}{22.4}=0.3mol$

Given,
$H_2{O}_2+2KMn{O}_4+3H_{2}S{O}_4\stackrel{50\%yield}{⟶}{K}_{2}S{O}_4+2MnS{O}_4+3O_2+4H_{2}O$
$\therefore$ Moles of $H_2{O}_2$ used in second reaction
$=\frac{0.3}{3\times 0.5}=0.2$
So, total moles of consumed $H_2{O}_2=(0.25+0.2)mol=0.45mol$
Molarity of $H_2{O}_2=\frac{0.45}{0.15}=3M$
Volume strength $=11.2\times 3=33.6$