25
Stoichiometry Part 1: moles to moles

Stoichiometry

  • Upload
    meghan

  • View
    29

  • Download
    0

Embed Size (px)

DESCRIPTION

Stoichiometry. Part 1: moles to moles. Introduction. Stoichiometry is the study of the mass and mole relationship between the reactants and products of a chemical reaction. In order to do stoichiometry properly, we need to know the proper chemical equation ... - PowerPoint PPT Presentation

Citation preview

Page 1: Stoichiometry

StoichiometryPart 1: moles to moles

Page 2: Stoichiometry

IntroductionStoichiometry is the study of the mass and mole relationship between the reactants and products of a chemical reaction.

In order to do stoichiometry properly, we need to know the proper chemical equation ...

... which means that we need to know the formulas of the reactants and products ...

... and we need a balanced chemical equation.

Page 3: Stoichiometry

IntroductionStoichiometry is the study of the mass and mole relationship between the reactants and products of a chemical reaction.

In order to do stoichiometry properly, we need to know the proper chemical equation ...

... which means that we need to know the formulas of the reactants and products ...

... and we need a balanced chemical equation.

Page 4: Stoichiometry

IntroductionStoichiometry relies on the molar ratio between chemicals in the reaction.

The molar ratio is the ratio of the coefficients of the individual chemicals.

For example, in the reaction:

CH4(g) + 2O2(g) → CO2(g) + 2H2O(l)

the molar ratio of CH4/O2 = 1/2

This means that we need 2 moles of O2 for each 1 mole of CH4 we use.

Page 5: Stoichiometry

Let’s do an example.

Page 6: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:

Page 7: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

Page 8: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

Page 9: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

Page 10: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol)

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

Page 11: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

Page 12: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

Page 13: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

Page 14: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98 18.01

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

Page 15: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98 18.01

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

n (mol)

Page 16: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98 18.01

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

n (mol) 20

Page 17: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98 18.01

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

n (mol) 20 ?

Page 18: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98 18.01

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

n (mol) 20 ?

Page 19: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98 18.01

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

n (mol) 20 ?

1

Page 20: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98 18.01

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

n (mol) 20 ?

1

Step 1: Calculate the mole ratio between CO2 and LiOH.

Page 21: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98 18.01

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

n (mol) 20 ?

1

Step 1: Calculate the mole ratio between CO2 and LiOH.

nLiOH/nCO2 = coeffLiOH/coeffCO2

Page 22: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98 18.01

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

n (mol) 20 ?

1

Step 1: Calculate the mole ratio between CO2 and LiOH.

nLiOH/nCO2 = coeffLiOH/coeffCO2 ⇒ nLiOH = (nCO2)(coeffLiOH)/coeffCO2

Page 23: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98 18.01

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

n (mol) 20 ?

1

Step 1: Calculate the mole ratio between CO2 and LiOH.

nLiOH/nCO2 = coeffLiOH/coeffCO2 ⇒ nLiOH = (nCO2)(coeffLiOH)/coeffCO2

⇒ nLiOH = (20 mol)(2)/1

Page 24: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98 18.01

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

n (mol) 20 ?

1

Step 1: Calculate the mole ratio between CO2 and LiOH.

nLiOH/nCO2 = coeffLiOH/coeffCO2 ⇒ nLiOH = (nCO2)(coeffLiOH)/coeffCO2

⇒ nLiOH = (20 mol)(2)/1 = 40 mol

Page 25: Stoichiometry

In a spacecraft, the carbon dioxide exhaled by astronauts can be removed by its reaction with lithium hydroxide, LiOH, according to the following chemical equation:CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)How many moles of lithium hydroxide are required to react with 20 mol of CO2, the average amount of exhaled by a person each day.

molar mass (g/mol) 44.00 23.95 73.98 18.01

CO2(g) + 2LiOH(s) → Li2CO3(s) + H2O(l)

n (mol) 20 40

1

Step 1: Calculate the mole ratio between CO2 and LiOH.

nLiOH/nCO2 = coeffLiOH/coeffCO2 ⇒ nLiOH = (nCO2)(coeffLiOH)/coeffCO2

⇒ nLiOH = (20 mol)(2)/1 = 40 mol