Answer : The theoretical yield of ammonia produced are, 242.76 g
Solution : Given,
Mass of hydrogen gas = 100 g
Mass of nitrogen gas = 200 g
Molar mass of [tex]H_2[/tex] = 2 g/mole
Molar mass of [tex]N_2[/tex] = 28 g/mole
First we have to calculate the moles of [tex]H_2[/tex] and [tex]N_2[/tex].
[tex]\text{Moles of }H_2=\frac{\text{Mass of }H_2}{\text{Molar mass of }H_2}=\frac{100g}{2g/mole}=50moles[/tex]
[tex]\text{Moles of }N_2=\frac{\text{Mass of }N_2}{\text{Molar mass of }N_2}=\frac{200g}{28g/mole}=7.14moles[/tex]
Now we have to calculate the limiting and excess reagent.
The balanced chemical reaction is,
[tex]3H_2(g)+N_2(g)\rightarrow 2NH_3(g)[/tex]
From the balanced reaction we conclude that
As, 3 moles of [tex]H_2[/tex] react with 1 mole of [tex]N_2[/tex]
So, 50 moles of [tex]H_2[/tex] react with [tex]\frac{50}{3}=16.66[/tex] moles of [tex]N_2[/tex]
That means, in the given balanced reaction, [tex]N_2[/tex] is a limiting reagent because it limits the formation of products and [tex]H_2[/tex] is an excess reagent.
Hence, the [tex]N_2[/tex] is the limiting reagent.
Now we have to calculate the moles of [tex]NH_3[/tex].
As, 1 mole of [tex]N_2[/tex] react with 2 moles of [tex]NH_3[/tex]
So, 7.14 moles of [tex]N_2[/tex] react with [tex]2\times 7.14=14.28[/tex] moles of [tex]NH_3[/tex]
Now we have to calculate the mass of [tex]NH_3[/tex].
[tex]\text{Mass of }NH_3=\text{Moles of }NH_3\times \text{Molar mass of }NH_3[/tex]
[tex]\text{Mass of }NH_3=(14.28mole)\times (17g/mole)=242.76g[/tex]
Therefore, the theoretical yield of ammonia produced are, 242.76 g
