Answer:
B) 15.4 g
Explanation:
First, we need to know which of the reagents is limiting. Let's do the stoichiometry calculus for Al and test if it is limiting.
For 2 moles of Al it's necessary 1 mol of Cr2O3. The molar masses of the elements are:
Al = 27 g/mol; O = 16 g/mol; Cr = 52 g/mol
So, the molar masses of the compounds are:
Cr2O3 = 2x52 + 3x16 = 152 g/mol
Al2O3 = 2x27 + 3x16 = 102 g/mol
The stoichiometry calculus is:
2 moles of Al ---------------- 1 mol of Cr2O3
2x27 g of Al ----------------- 152 g of Cr2O3
8 g of Al ----------------------- x g of Cr2O3
By a direct simple three rule:
54x = 1216
x = 22.52 g
So, 22.52 g of Cr2O3 must react with 8.00g of Al, then Cr2O3 is in excess, and Al is the limiting reagent.
Now, doing the stoichiometry calculus between the limiting reagent and chromium:
2 moles of Al ----------------------- 2 moles of Cr
1 mol of Al ---------------------------- 1 mol of Cr
27 g of Al ---------------------------- 52 g of Cr
8 g of Al ------------------------------ y
By a direct simple three rule:
27y = 416
y = 15.41 g
