Presentation is loading. Please wait.

Presentation is loading. Please wait.

Stoichiometry and the Math of Equations Part 4: Percent Yield 1.

Published byArron Whitehead Modified over 8 years ago

Similar presentations

Presentation on theme: "Stoichiometry and the Math of Equations Part 4: Percent Yield 1."— Presentation transcript:

1 Stoichiometry and the Math of Equations Part 4: Percent Yield 1

2 Objectives Explain that the final answer to an excess-limiting problem is the theoretical amount of product made Use this knowledge and experimental data to calculate the percentage yield of a reaction 2

3 Percent Yield The final answer to ANY excess-limiting problem is the theoretical yield of product- the amount of product predicted from the amounts of the reactants given –Represents the maximum amount of product that can be made Reality: –The theoretical yield is rarely obtained in a real laboratory setting –Side reactions consume some of the reactants or products 3

4 Percent Yield Percent yield - the actual yield, the amount actually obtained, is often compared to the theoretical yield as a percentage 4

5 Percent Yield 68.5 g of CO is reacted with 8.60 g of H 2 gas to produce methanol (CH 3 OH). If 55.7 g of methanol is actually produced, calculate the % yield of the methanol The formula for calculating percent yield is: –Actual = What you got (experimental) –Theoretical = What you should have gotten in theory (expected) 5

6 68.5 g of CO is reacted with 8.60 g of H 2 gas to produce methanol (CH 3 OH). If 55.7 g of methanol is actually produced, calculate the % yield of the methanol First – find the theoretical yield (do an excess-limiting problem) 68.5 g 8.60 g ? g CO + 2 H 2 → CH 3 OH 1 mole 2 mole 1 mole 6

7 68.5 g of CO is reacted with 8.60 g of H 2 gas to produce methanol (CH 3 OH). If 55.7 g of methanol is actually produced, calculate the % yield of the methanol Find out which one is limiting: 68.5g CO x1 mol CO x 2 mol H 2 x 2.02g H 2 1 28.0g CO 1 mol CO 1 mol H 2 = 9.88 g H 2 so H 2 is limiting 8.60g H 2 x 1 mol H 2 x 1 mol CH 3 OH x 32.0g CH 3 OH = 1 2.02g H 2 2 mol H 2 1 mol CH 3 OH = 68.1 g CH 3 OH 7

8 68.5 g of CO is reacted with 8.60 g of H 2 gas to produce methanol (CH 3 OH). If 55.7 g of methanol is actually produced, calculate the % yield of the methanol Next, find the percent yield: What we got (given in problem) What we should have gotten 8

9 Objectives Explain that the final answer to an excess-limiting problem is the theoretical amount of product made Use this knowledge and experimental data to calculate the percentage yield of a reaction 9

Download ppt "Stoichiometry and the Math of Equations Part 4: Percent Yield 1."

Similar presentations

II. Stoichiometry in the Real World (p. 288-294) Stoichiometry – Ch. 9.

II. Stoichiometry in the Real World (p ) Stoichiometry – Ch. 9.
Chapter 5 Chemical Reactions

Chapter 5 Chemical Reactions
Chapter 9: Stoichiometry

Chapter 9: Stoichiometry
Chapter 9: Chemical quantities Chemistry 1020: Interpretive chemistry Andy Aspaas, Instructor.

Chapter 9: Chemical quantities Chemistry 1020: Interpretive chemistry Andy Aspaas, Instructor.
Limiting Reactant. Which will run out first? In the real world, one reactant will be consumed before other(s) In the real world, one reactant will be.

Limiting Reactant. Which will run out first? In the real world, one reactant will be consumed before other(s) In the real world, one reactant will be.
Chemistry 11 Chapter 6 STOICHIOMETRY OF EXCESS QUANTITIES.

Chemistry 11 Chapter 6 STOICHIOMETRY OF EXCESS QUANTITIES.
Chemical Quantities Chapter 9

Chemical Quantities Chapter 9
Stoichiometry: Calculations with Chemical Equations.

Stoichiometry: Calculations with Chemical Equations.
Limiting Reagent What happens in a chemical reaction, if there is an insufficient amount of one reactant?

Limiting Reagent What happens in a chemical reaction, if there is an insufficient amount of one reactant?
Ppt 12 Plan (PS5, 12-18 material) 1.Limiting Reactant Situations 2.% Yield 3.Molarity (done in lab—Exp. 24; worksheet in next Ppt) 1Ppt 12.

Ppt 12 Plan (PS5, material) 1.Limiting Reactant Situations 2.% Yield 3.Molarity (done in lab—Exp. 24; worksheet in next Ppt) 1Ppt 12.
Stoichiometry, Limiting Reactants and Percent Yield

Stoichiometry, Limiting Reactants and Percent Yield
Chemical Reactions Unit

Chemical Reactions Unit
Stoichiometry Introduction.

Stoichiometry Introduction.
Limiting Reagent and Percent Yield

Limiting Reagent and Percent Yield
Chapter 9 Chemical Quantities. 9 | 2 Information Given by the Chemical Equation Balanced equations show the relationship between the relative numbers.

Chapter 9 Chemical Quantities. 9 | 2 Information Given by the Chemical Equation Balanced equations show the relationship between the relative numbers.
Percent Yield and Limiting Reactants

Percent Yield and Limiting Reactants
Stoichiometry Percent Yield. Important Terms  Yield: the amount of product  Theoretical yield: the maximum amount of product expected, based on stoichiometric.

Stoichiometry Percent Yield. Important Terms  Yield: the amount of product  Theoretical yield: the maximum amount of product expected, based on stoichiometric.
Limiting/Excess Reactants and Percent Yield

Limiting/Excess Reactants and Percent Yield
Limiting Reactants and Percent Yields

Limiting Reactants and Percent Yields
Limiting Reactants and Excess

Limiting Reactants and Excess

Similar presentations

Ads by Google