An intermediate step in the industrial production of nitric acid, HNO₃, involves the reaction of ammonia, NH₃, with oxygen gas, O₂, to form nitrogen monoxide, NO, and water, H₂O. 

 

4 NH₃ (g) + 5 O₂(g) → 4 NO(g) + 6 H₂O(g)

 

Molar masses (g mol^-1)      NH₃ = 17.03      O₂ = 32.00      NO = 30.01     H₂O = 18.02

 

(a) Assuming excess O₂, how many grams of nitrogen monoxide, NO, (i.e., the theoretical yield of NO) can be formed by the reaction of 46.00 g of ammonia, NH₃

_{b. Assuming excess NH3, what is the theoretical yield of NO if we start with 73.00 grams of O2?} 

_{c.If we start with 8.0 moles of NH3 and 8.0 moles of O2, how many moles of NO will we produce?}

_{d. If we have 36.00 g of NH3 and 72.00 g of O2, what is the theoretical yield of NO}