Question

The addition of 0.15 moles of $N{a}_{2}S{O}_4$ to an aqueous solution containing 0.05 moles of $BaC{l}_2$ results in the formation of an insoluble white precipitate of $BaS{O}_4$. Find the limiting reagent and the amount of$BaS{O}_4$ that gets formed.

• A. $N{a}_{2}S{O}_4$, 11.65 g
• B. $BaC{l}_2$, 34.95 g
• C. $N{a}_{2}S{O}_4$, 34.95 g
• D. $BaC{l}_2$, 11.65 g

Answer 1

The correct option is D $BaC{l}_2$, 11.65 g

$N{a}_{2}S{O}_4+BaC{l}_2\to 2NaCl+BaS{O}_4$
Moles of $N{a}_{2}S{O}_4$ = 0.15 moles
Moles of $BaC{l}_2$ = 0.05 moles
1 mole of $N{a}_{2}S{O}_4$ reacts with 1 mole of $BaC{l}_2$
0.15 moles of $N{a}_{2}S{O}_4$ will react with 0.15 moles of $BaC{l}_2$
So, $BaC{l}_2$ is the limiting reagent.
As per the reaction, 1 mole of $BaC{l}_2$ produces 1 mole of $BaS{O}_4$
0.05 moles of $BaC{l}_2$ will produce 0.05 moles of $BaS{O}_4$
Amount of precipitate formed = moles of $BaS{O}_4$ formed $\times$ Molar mass of $BaS{O}_4$
Amount of precipitate formed = $0.05\times 233=11.65$ g