Answer:
1. 170,9 g of AlCl₃ and 142,5 g of Ca(OH)₂
2. 108,0 g of HgO
3. 112,0 g of Ba(NO₃)₂ and 68,39 g of CuSO₄
4. 60,32 g of PbCl₂ and 72,01 g of KI
5. 81,63 g of Na₂S and 140,6 g of CuCl₂
Explanation:
1. The reaction is:
2 AlCl₃ + 3 Ca(OH)₂ → 2 Al(OH)₃ + 3 CaCl₂
The insoluble product is Al(OH)₃. To produce 100,0 g you need to add:
100,0 g ×[tex]\frac{1 mol}{78 g}[/tex] = 1,282 moles of Al(OH)₃.
Thus, the grams of AlCl₃ and Ca(OH)₂ you need are:
1,282 moles of Al(OH)₃ ×[tex]\frac{2 AlCl_3 moles}{2 Al(OH)_3 moles}[/tex] = 1,282 moles of AlCl₃ × [tex]\frac{133,34 g}{1 mol}[/tex] = 170,9 g of AlCl₃
1,282 moles of Al(OH)₃ ×[tex]\frac{3 Ca(OH)_2 moles}{2 Al(OH)_3 moles}[/tex] = 1,923 moles of Ca(OH)₂ × [tex]\frac{74,093 g}{1 mol}[/tex] = 142,5 g of Ca(OH)₂
2. The reaction is:
2 HgO + → 2 Hg + O₂
The insoluble product is Hg. To produce 100,0 g you need to add:
100,0 g ×[tex]\frac{1 mol}{200,59 g}[/tex] = 0,4985 moles of Hg.
Thus, the grams of HgO you need are:
0,4985 moles of Hg ×[tex]\frac{2 HgO moles}{2 Hg moles}[/tex] = 0,4985 moles of HgO × [tex]\frac{216,59 g}{1 mol}[/tex] = 108,0 g of HgO
3. The reaction is:
Ba(NO₃)₂ + CuSO₄ → BaSO₄ + Cu(NO₃)₂
The insoluble product is BaSO₄. To produce 100,0 g you need to add:
100,0 g ×[tex]\frac{1 mol}{233,38 g}[/tex] = 0,4285 moles of BaSO₄.
Thus, the grams of Ba(NO₃)₂ and CuSO₄ you need are:
0,4285 moles of BaSO₄ ×[tex]\frac{1 Ba(NO_{3})_2 moles}{1 BaSO₄ moles}[/tex] = 0,4285 moles of Ba(NO₃)₂ × [tex]\frac{261,337 g}{1 mol}[/tex] = 112,0 g of Ba(NO₃)₂
0,4285 moles of BaSO₄ ×[tex]\frac{1 CuSO_4 moles}{1 BaSO_4 moles}[/tex] = 0,4285 moles of CuSO₄ × [tex]\frac{159,609 g}{1 mol}[/tex] = 68,39 g of CuSO₄
4. The reaction is:
PbCl₂ + 2 KI → PbI₂ + 2 KCl
The insoluble product is PbI₂. To produce 100,0 g you need to add:
100,0 g ×[tex]\frac{1 mol}{461,01 g}[/tex] = 0,2169 moles of PbI₂.
Thus, the grams of PbCl₂ and KI you need are:
0,2169 moles of PbI₂ ×[tex]\frac{1 PbCl_2 moles}{1 PbI_2 moles}[/tex] = 0,2169 moles of PbCl₂ × [tex]\frac{278,1 g}{1 mol}[/tex] = 60,32 g of PbCl₂
0,2169 moles of PbI₂ ×[tex]\frac{2 KI moles}{1 PbI_2 moles}[/tex] = 0,4338 moles of KI × [tex]\frac{166,0028 g}{1 mol}[/tex] = 72,01 g of KI
5. The reaction is:
Na₂S + CuCl₂ → CuS + 2 NaCl
The insoluble product is CuS. To produce 100,0 g you need to add:
100,0 g ×[tex]\frac{1 mol}{95,611 g}[/tex] = 1,046 moles of CuS.
Thus, the grams of Na₂S and CuCl₂ you need are:
1,046 moles of CuS ×[tex]\frac{1 Na_{2}S moles}{1 CuS moles}[/tex] = 1,046 moles of Na₂S × [tex]\frac{78,0452 g}{1 mol}[/tex] = 81,63 g of Na₂S
1,046 moles of CuS ×[tex]\frac{1 CuCl_2 moles}{1 CuS moles}[/tex] = 1,046 moles of CuCl₂ × [tex]\frac{134,45 g}{1 mol}[/tex] = 140,6 g of CuCl₂
I hope it helps!
