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Solution Stoichiometry

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Presentation on theme: "Solution Stoichiometry"— Presentation transcript:

1 Solution Stoichiometry

2 Reactions in Aqueous Solution
Double Replacement: (precipitate) 2 KNO3(aq) + PbI2(s) 2 KI(aq) + Pb(NO3)2(aq)  Cu(s) + 2 AgNO3(aq)  2 Ag(s) + Cu(NO3)2(aq) Single Replacement:

3 Solution Stoichiometry
Rxn: a A(aq) + b B(aq)  c C(aq) + d D(aq) molar mass A grams A molarity A (M) mol A Liters of A grams A 1 mol A mol A 1 Liters mol-to-mol ratio grams B 1 mol B mol B 1 Liters molar mass B molarity B (M) grams B mol B Liters of B 3

4 Example #1: Liters of A  Liters of B
Ammonia and phosphoric acid solutions are used to produce ammonium hydrogen phosphate fertilizer. What volume of 14.8 M NH3 is needed to react with 120. L of 12.9 M of H3PO4 ? 2 NH3(aq) H3PO4(aq)  (NH4)2HPO4(aq) V = ? L V = 120. L M = 14.8 mol/L M = 12.9 mol/L molarity B 12.9 mol H3PO4 2 mol NH3 1 L NH3 x x 120. L H3PO4 x 1 L H3PO4 1 mol H3PO4 14.8 mol NH3 Liters of A molarity A = ____L NH3 209 L NH3

5 Example #2: Liters of A  Molarity of B
A 159 mL sample of KOH solution reacts completely with 100. mL of 1.50 M H2SO4 . Calculate the molarity of the of the KOH solution. H2SO4(aq) + 2 KOH(aq)  2 H2O(l) + K2SO4(aq) V = L V = L M = 1.50 mol/L M = ? mol/L 1.50 mol H2SO4 2 mol KOH mol KOH x = 0.100 L H2SO4 x 1 L H2SO4 1 mol H2SO4 Liters of A molarity A molarity B 0.300 mol KOH = _____ M KOH 1.89 M KOH 0.159 L KOH

6 Example #3: grams of A  Liters of B
Solid aluminum is added to an aqueous solution of zinc chloride. What volume of 7.50 M ZnCl2(aq) solution is needed to react completely with grams of Al(s) ? 2 Al(s) ZnCl2(aq)  2 AlCl3(aq) Zn(s) m = 54.0 g V = ? L M = 7.50 mol/L molarity B 1 mol Al 3 mol ZnCl2 1 L ZnCl2 x x 54.0 g Al x 26.98 g Al 2 mol Al 7.50 mol ZnCl2 grams of A molar mass A = ____ L ZnCl2 0.400 L ZnCl2

7 Example #4: Liters of A  grams of B
Adding 102 mL of M CuCl2(aq) solution to an excess of AgNO3(aq) forms solid AgCl(s) precipitate. What is the maximum mass of AgCl(s) precipitate? CuCl2(aq) + 2 AgNO3(aq)  Cu(NO3)2(aq) + 2 AgCl(s) V = L m = ? g M = mol/L molar mass B 0.508 mol CuCl2 2 mol AgCl 143.32 g AgCl x 0.102 L CuCl2 x x 1 L CuCl2 1 mol CuCl2 1 mol AgCl Liters of A molarity A 14.9 g AgCl = ____ g AgCl

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