Mass of Oxygen : 18.8 g
Further explanation
Reaction(balanced) :
4Fe + 3O₂ → 2Fe₂O₃
mass Fe = 43.7 g
mol Fe(MW= 55,845 g/mol) :
[tex]\tt mol=\dfrac{mass}{MW}\\\\mol=\dfrac{43.7}{55.845}\\\\mol=0.783[/tex]
mol O₂ : mol Fe = 3 : 4, so mol O₂ :
[tex]\tt \dfrac{3}{4}\times 0.783=0.5873[/tex]
Mass O₂(MW=32 g/mol) :
[tex]\tt mass=mol\times MW\\\\mass=0.5873\times 32\\\\mass=18.7936~g\approx 18.8[/tex]
Or simply you can Conservation of mass, where the masses before and after the reaction are the same
mass reactants=mass products
mass iron+mass oxygen=mass iron (III) oxide
43.7 g + mass oxygen=62.5 g
mass oxygen = 62.5 - 43.7 = 18.8 g
