Answer : The amount of sodium oxide produced is, 74.40 grams
Solution : Given,
Mass of sodium = 55.3 g
Mass of [tex]O_2[/tex]= 64.3 g
Molar mass of sodium = 23 g/mole
Molar mass of [tex]O_2[/tex] = 32 g/mole
Molar mass of [tex]Na_2O[/tex] = 61.9 g/mole
First we have to calculate the moles of sodium and oxygen.
Moles of Na = [tex]\frac{\text{ given mass of Na}}{\text{ molar mass of Na}}= \frac{55.3g}{23g/mole}=2.404moles[/tex]
Moles of [tex]O_2[/tex] = [tex]\frac{\text{ given mass of }O_2}{\text{ molar mass of }O_2}= \frac{64.3g}{32g/mole}=2.009moles[/tex]
Now we have to calculate the limiting and excess reagent.
The balanced chemical reaction will be,
[tex]4Na+O_2\rightarrow 2Na_2O[/tex]
From the balanced reaction we conclude that
4 moles of sodium react with 1 mole of oxygen
2.404 moles of sodium react with [tex]\frac{2.404}{4}=0.601[/tex] moles of oxygen
Excess moles of oxygen = 2.009 - 0.601 = 1.408 moles
That means sodium is a limiting reagent and oxygen is an excess reagent.
Now we have to calculate the moles of sodium oxide.
From the reaction we conclude that,
4 moles of sodium react to give 2 moles of sodium oxide
2.404 moles of sodium react to give [tex]\frac{2}{4}\times 2.404=1.202[/tex] moles of sodium oxide
Now we have to calculate the mass of sodium oxide.
[tex]\text{Mass of }Na_2O=\text{Moles of }Na_2O\times \text{Molar mass of }Na_2O[/tex]
[tex]\text{Mass of }Na_2O=(1.202moles)\times (61.9g/mole)=74.40g[/tex]
Therefore, the amount of sodium oxide produced is, 74.40 grams
