First, we must write our reaction and balance it:
2 FePO4 + 3 Na2SO4 => Fe2(SO4)3 +2 Na3PO4 (balanced)
We have 32.73 g FePO4 that reacts, and we want to get the amount of Fe2(SO4)3 produced.
The excess here is Na2SO4
We also need the molar masses for FePO4 (150.8 g/mol) and for Fe2(SO4)3 (399.8 g/mol)
Procedure:
2 x 150.8 g FePO4 ------------------- 399.8 g Fe2(SO4)3
32.73 g FePO4 ------------------- X
X = 32.73 g x 399.8 g/ 2 x 150.8 g = 43.39 g
Answer: 43.39 g of Fe2(SO4)3
