Answer:
a. 77%
Explanation:
To solve the exercise, you need to know the limiting reagent. The limiting reagent is one that is consumed first in the chemical reaction. The other reagent is known as an excess reagent, and it is the one left over in a chemical reaction.
To know if ammonia or oxygen is the limiting reagent, we should relate the weights of both compounds in the reaction. We know that 4NH3 (68 g) react with 5O2 (160 g), so we should find out how much NH3 is required to react with 150 g of O2:
160 g O2 _______ 68 g NH3
150 g O2 _______ x = 150 g * 68 g / 160 g = 63.75 g NH3
As we have 150 g of NH3 but only 63.75 g are required, we know that ammonia is the excess reagent, so oxygen is the reagent that limits the reaction and that we should use to calculate the percentage yield of the reaction.
In the reaction we observe that 5O2 (160 g) produces 4NO (120g), so:
160 g O2 ______ 120 g NO
150 g O2 ______ x = 150 g * 120 g / 160 g = 112.5 g NO
If the percent yield of the reaction were 100%, it would produce 112.5 g of NO, however only 87 g of NO were obtained, so we should find out what the percentage of reaction yield was:
112.5 g NO ______ 100%
87 g NO _______ x = 87g * 100% / 112.5 g = 77%
Thus we observe that the reaction had a yield of 77%.
Answer:
The option correct is a.
Explanation:
1. Calculation of the molecular weights of the substances present in the reaction
MW NH3= AW N+ (AWH)X3= 14 g/mol+ (1g/mol)X3 =17g/mol
MW O2= AW OX2= (16 g/mol)X2 =32g/mol
MW NO= AW N+ AW O= 14 g/mol+ 16 g/mol=30g/mol
Where:
MW: MOLECULAR WEIGHT
AW: ATOMIC WEIGHT
N: nitrogen; O: oxygen; H: hydrogen
2. Relationship between the moles present and the moles necessary for the reaction to take place
In order to determine the relationship we must calculate the number of moles with the amounts used of each reactant (ammonia and oxygen)
mol NH3=\frac{1mol}{17g}x150g=8.82 mol
mol O2=\frac{1mol}{32g}x150g=4.69 mol
RNH3=\frac{MOL present NH3}{MOL necessary NH3}=\frac{8.82mol}{4mol} =2.205
RO2=\frac{MOL present O2}{MOL necessary O2}=\frac{4.69mol}{5mol} =0.938
The limit reagent is molecular oxygen because the amount available is less than that required according to the stoichiometry of the reaction. On the other hand, the amount of ammonia available is approximately double that necessary for the reaction to take place.
3. Percent yield teoric
We must calculate the theoretical yield based on the limiting reagent (O2)
[tex]g NO= \frac{MW NO}{1} x \frac{mol Theorycal NO}{mol TheorycalO2} x mol O2 present=\frac{30gNO}{1 mol NO} x\frac{4 mol NO}{5mol O2} x4,69 mol O2=112,56gNO[/tex]
4. Percent yield of this reaction
[tex]PERCENT yield= \frac{g NO experiment}{g NO theorycal}x100 =\frac{87g}{112.56g} x100=77 percent[/tex]
