Answer:
880.7 grams of pure copper is produced.
Step-by-step explanation:
Let's make the reaction:
2 Cu₃FeS₃ + 7O₂ = 6Cu + 2FeO + 6O₂
In this equation, 2 moles of Cu₃FeS₃ reacts with 7 moles of O₂
Mass / Molar mass = Moles
Molar mass Cu₃FeS₃ = 342,6 g/m
2500 g/342,6 g/m = 7.29 moles Cu₃FeS₃
600 g/ 32g/m = 18.75moles O₂
I have to find out my limiting reactant.
2 moles of Cu₃FeS₃ reacts with 7 moles of O₂
7.29 moles of Cu₃FeS₃ reacts with 25.51 moles
The O₂ is the limiting.
If 7 moles of O₂ produce 6 moles of Cu
18.75 moles of O₂ will produce, (18.75 . 6) / 7 = 16.07 moles
This is the 100 % yield, so:
100% _____ 16.07 moles of Cu produced
86.3% ______ (86.3 . 16.07) / 100 = 13.8 moles
Molar mass of Cu = 63.5 g/m
Moles . molar mass = mass
13.8 m . 63.5 g/m = 880.7 g