Answer:
1) The no. of grams of Na₂CO₃ = 1.96 g.
2) The no. of grams of AgNO₃ = 0.0 g, because it is the limiting reactant that is consumed completely.
3) The no. of grams of Ag₂CO₃ = 3.998 g ≅ 4.0 g.
4) The no. of grams of NaNO₃ = 2.498 g ≅ 2.5 g.
Explanation:
Na₂CO₃(aq) + 2AgNO₃(aq) → Ag₂CO₃(s) + 2NaNO₃,
It is clear that 1 mol of Na₂CO₃ and 2 mol of AgNO₃ to produce 1 mol of Ag₂CO₃ and 2 mol of NaNO₃.
no. of moles of Na₂CO₃ = mass/molar mass = (3.5 g)/(105.9888 g/mol) = 0.033 mol.
no. of moles of AgNO₃ = mass/molar mass = (5.0 g)/(169.87 g/mol) = 0.0294 mol.
1) the no. of grams of sodium carbonate, and silver nitrate:
1 mol of Na₂CO₃ reacts completely with 2 mol of AgNO₃ with (1: 2 molar ratio).
∴ 0.0145 mol of Na₂CO₃ "the excess reactant, and the remaining is in excess (0.033 mol - 0.0145 mol = 0.0185 mol)" reacts completely with (0.0294 mol) of AgNO₃ "limiting reactant".
∴ The no. of grams of Na₂CO₃ = (no. of moles remaining)(molar mass) = (0.0185 mol)((105.9888 g/mol) = 1.96 g.
∴ The no. of grams of AgNO₃ = 0.0 g, because it is the limiting reactant that is consumed completely.
2) the no. of grams of silver carbonate:
Using cross multiplication:
1 mol of Na₂CO₃ produces → 1 mol of Ag₂CO₃, from stichiometry.
∴ 0.0145 mol of Na₂CO₃ produces → 0.0145 mol of Ag₂CO₃.
∴ The no. of grams of Ag₂CO₃ = (no. of moles of Ag₂CO₃)(molar mass of Ag₂CO₃) = (0.0145 mol)(275.7453 g/mol) = 3.998 g ≅ 4.0 g.
3) the no. of grams of sodium nitrate:
Using cross multiplication:
2 mol of AgNO₃ produces → 2 mol of NaNO₃, from stichiometry.
∴ 0.0294 mol of AgNO₃ produces → 0.0294 mol of NaNO₃.
∴ The no. of grams of NaNO₃ = (no. of moles of NaNO₃)(molar mass of NaNO₃) = (0.0294 mol)(84.9947 g/mol) = 2.498 g ≅ 2.5 g.
