The number of moles of solute present in the solutions of (I... | Chemistry | SolveeIt

Question

The number of moles of solute present in the solutions of $I, II$ and $III$ is respectively I. $500 \,mL$ of $0.2\, M\, NaOH$ II. $200 \,mL$ of $0.1 \,N \,H _{2} SO _{4}$ II. $6 g$ of urea in $1 \,kg$ of water

0.1, 0.01, 0.1

0.1, 0.02, 0.1

0.2, 0.01, 0.1

0.1, 0.01, 0.2

Answer

0.1, 0.01, 0.1

Explanation

Solution

I. Moles of solute $NaOH$ = molarity $\times$ volume of solution (in $L$ )

$=\frac{0.2 \times 500}{1000}=0.1 \,mol$

II. Normality = n -factor $\times$ molarity

Molarity $\left( H _{2} SO _{4}\right)=\frac{0.1}{2}=0.05\, M$

moles of $H _{2} SO _{4}=\frac{0.1 \times 200}{1000 \times 2}=0.01 \,M$

III. Moles $=\frac{\text { Weight of urea }}{\text { Molecular weight of urea }}$

$=\frac{6}{60}=0.1 \,m$

Chemistry Question on Mole concept and Molar Masses

Solution