A chemical engineer calculated that 15.0 mol H2 was needed to react with excess N2 to prepare 10.0 mol NH3. But the percentage yield of the reaction is 60.0%.

a. Write a balanced equation for the reaction

b. How many moles of NH3 were actually made based on the percentage yield?

c. How many grams of NH3 are formed?

Question

Chemistry

Paulina Dougherty

14 May, 02:02

A chemical engineer calculated that 15.0 mol H2 was needed to react with excess N2 to prepare 10.0 mol NH3. But the percentage yield of the reaction is 60.0%.

a. Write a balanced equation for the reaction

b. How many moles of NH3 were actually made based on the percentage yield?

c. How many grams of NH3 are formed?

+4

Answers (1)

Know the Answer?

Rylee Schneider · Answer 1

A. 3H2 + N2 - > 2NH3

B. 6 moles

C. 170g

Explanation:

A. The balanced equation for the reaction? This is given below:

3H2 + N2 - > 2NH3

B. Determination of the actual yield of NH3. This is illustrated below:

Theoretical yield = 10 moles

Percentage yield = 60%

Actual yield = ?

Percentage yield = Actual yield/Theoretical yield x100

60/100 = Actual yield / 10

0.6 = Actual yield/10

Cross multiply

Actual yield = 0.6 x 10

Actual yield of NH3 = 6 moles

C. Determine the mass of NH3 produced.

Number of mole NH3 = 10 moles

Molar Mass of NH3 = 14 + (3x1) = 14 + 3 = 17g/mol

Mass of NH3 = ?

Mass = number of mole x molar Mass

Mass of NH3 = 10 x 17

Mass of NH3 = 170g