Answer:
V = 9.86 L
Explanation:
Given data:
Mass of Al₂O₃ produced = 36.12 g
Temperature = 280.0 K
Pressure = 1.4 atm
Volume of O₂ used = ?
Solution:
Chemical equation:
4Al + 3O₂ → 2Al₂O₃
Number of moles of Al₂O₃ :
Number of moles = mass/ molar mass
Number of moles = 36.12 g/ 101.96 g/mol
Number of moles = 0.4 mol
Now we will compare the moles of O₂ and Al₂O₃ .
Al₂O₃ : O₂
2 : 3
0.4 : 3/2 ×0.4 = 0.6 mol
Volume of O₂:
PV = nRT
V = nRT/P
V = 0.6 mol × 0.0821 atm. L/mol.K × 280.0 k / 1.4 atm
V = 13.8 atm.L / 1.4 atm
V = 9.86 L
