Answer:
52.80 % is the percent yield of the reaction.
Explanation:
Mass of nitrogen gas = 38.0 g
Moles of nitrogen = [tex]\frac{38.0g}{17 g/mol}=2.235 mol[/tex]
[tex]3H_2+N_2\rightarrow 2NH_3[/tex]
According to reaction, 1 moles of nitrogen gas gives 2 moles of ammonia, then 2.235 moles of nitrogen will give:
[tex]\frac{2}{1}\times 2.235mol=4.470 mol[/tex] ammonia
Mass of 4.470 moles of ammonia
= 4.470 mol × 17 g/mol = 75.99 g
Theoretical yield of ammonia = 217.8 g
Experimental yield of ammonia = 40.12 g
The percentage yield of reaction:
[tex]=\frac{\text{Experimental yield}}{\text{Theoretical yield}}\times 100[/tex]
[tex]=\frac{40.12 g}{75.99 g}\times 100=52.80\%[/tex]
52.80 % is the percent yield of the reaction.
