Respuesta :
Answer:
36.37% is the percent yield of the reaction.
Explanation:
[tex]4NH_3(aq)+3O_2(g)\rightarrow 2N_2(g)+6H_2O(l)[/tex]
1)0.650 L nitrogen gas , at 295 K and 1.01 bar.
Let the moles of nitrogen gas be n.
Pressure of the gas ,P= 1.01 bar = 0.9967 atm (1 bar = 0.9869 atm)
Temperature of the gas = T = 295 K
Volume of the gas = V = 0.650 L
Using an ideal gas equation:
[tex]PV=nRT[/tex]
[tex]n=\frac{PV}{RT}=\frac{0.9967 atm\times 0.650 L}{0.0821 atm L/mol K\times 295 K}=0.0267 mol[/tex]
2) Moles of ammonia gas=[tex]\frac{2.53 g}{17 g/mol}=0.1488 mol[/tex]
Moles of oxygen gas =[tex]\frac{3.53 g}{32 g/mol}=0.1101 mol[/tex]
According to reaction ,3 mol of oxygen reacts with 4 mol of ammonia.
Then,0.1101 mol of oxygen will react with:
[tex]\frac{4}{3}\times 0.1101 mol=0.1468 mol[/tex] of ammonia.
Hence, oxygen gas is in limiting amount and act as limiting reagent.
3) Theoretical yield of nitrogen gas :
According to reaction, 3 mol of oxygen gas gives 2 moles of nitrogen gas.
Then 0.1101 mol of oxygen will give:
[tex]\frac{2}{3}\times 0.1101 mol=0.0734 mol[/tex] of nitrogen.
Theoretical yield of nitrogen gas = 0.0734 mol
Experimental yield of nitrogen as calculated in part (1) = 0.0267 mol
Percentage yield:
[tex]\frac{\text{Experiential yield}}{\text{Theoretical yield}}\times 100[/tex]
Percentage yield of the reaction:
[tex]\frac{ 0.0267 mol}{0.0734 mol}\times 100=36.37\%[/tex]
36.37% is the percent yield of the reaction.
