All High School Chemistry Resources
Example Questions
Example Question #2 : Identifying Limiting Reagents
Consider the following reaction:
If the reaction starts initially with of nitrogen gas and of hydrogen gas, what will be the limiting reactant?
Both will run out at the same time
Ammonia
Hydrogen gas
Nitrogen gas
Nitrogen gas
In order to determine the limiting reactant, we can use a calculation to determine how much of one reactant is needed in order to use up the other. For example, we can see how much hydrogen gas is necessary in order to use up all of nitrogen gas that we have:
In other words, we need of hydrogen gas in order to use up of nitrogen gas. Since we have of hydrogen gas, we have more than enough to react all of the nitrogen gas, and the nitrogen gas will be used up before the hydrogen gas. As a result, nitrogen gas is the limiting reactant.
Example Question #2 : Identifying Limiting Reagents
What property will be most important in determining the limiting reagent of the following reaction, given the available amount of each reactant?
Volume ratio of A to B
Temperature of the reactants
Gram ratio of A to B
Pressure ratio of A to B
Molar ratio of A to B
Molar ratio of A to B
Limiting reactants are determined when there is an excess of a particular reactant, in relation to the other reactants available. When reactants are compared, one must always compare the molar ratio in order to determine which reactant is limited. In this reaction, if we are given the available amount of each reactant, we will need to convert the given amount of one reactant (A) to the necessary amount of the other (B) required to fully react. If we find that reactant A is available in excess, then reactant B will be the limiting reagent. The only way to compare these two terms, however, is by using the molar ratio in the reaction.
Example Question #3 : Identifying Limiting Reagents
Hydrogen gas combines with oxygen gas during combustion to produce water according to the chemical reaction:
If 64 grams of oxygen gas and 6 grams of hydrogen gas are combusted, what amount of reactants will you have after the reaction?
0g of hydrogen gas and 32g of oxygen gas
2g of hydrogen gas and 16g of oxygen gas
2g of hydrogen gas and 0g of oxygen gas
0g of hydrogen gas and 16g of oxygen gas
0g of hydrogen gas and 0g of oxygen gas
0g of hydrogen gas and 16g of oxygen gas
Let's begin by converting our reactants from grams to moles. Note that both gases are diatomic, meaning that there are two atoms per molecule.
Molecular weights:
Conversion to moles:
We have 2 moles of oxygen gas and 3 moles of hydrogen gas. Next, look at the given reaction:
Two moles of hydrogen gas are consumed to react each mole of oxygen gas. We can use this ratio to find the number of moles of oxygen gas needed to react all of the hydrogen given in this question.
Only 1.5 moles of oxygen gas are needed to react all of the hydrogen gas. Since we have 2 moles of oxygen gas, some of it will remain unreacted when all of the hydrogen gas has been used. This means the hydrogen gas is the limiting reagent.
Find the amount of unreacted oxygen gas:
Convert to grams:
Example Question #5 : Identifying Limiting Reagents
Consider the reaction of potassium carbonate with calcium nitrate to form potassium nitrate and calcium carbonate:
Suppose 50ml of a 0.250M potassium carbonate solution was mixed with 100ml of a 0.175M calcium nitrate solution. What is the maximum amount of calcium carbonate that could be obtained?
First, we must determine how many moles of each reactant begin the reaction by multiplying the molarity by the volume. Don't forget to convert volume to liters!
Next, use the reaction coefficients (i.e. the stoichiometry) to determine how many moles of calcium carbonate could be formed from each of the reactants. In this case, there is a 1:1 molar ratio between both reactants and calcium carbonate.
Thus, 0.0125 moles of potassium carbonate could form 0.0125 moles of calcium carbonate, while 0.0175 moles of calcium nitrate could form 0.0175 moles of calcium carbonate. The maximum amount of product is going to be determined by the limiting reactant, i.e. the reactant that provides the least amount of product. In this case, the limiting reactant is potassium carbonate, and the maximum yield of calcium carbonate is 0.0125mol.
For the final step convert this value to grams:
Example Question #5 : Identifying Limiting Reagents
Consider the reaction of potassium carbonate with calcium nitrate to form potassium nitrate and calcium carbonate:
Suppose 50ml of a 0.250M potassium carbonate solution was mixed with 100ml of a 0.175M calcium nitrate solution. What is the maximum amount of calcium carbonate that could be obtained?
First, we must determine how many moles of each reactant begin the reaction by multiplying the molarity by the volume. Don't forget to convert volume to liters!
Next, use the reaction coefficients (i.e. the stoichiometry) to determine how many moles of calcium carbonate could be formed from each of the reactants. In this case, there is a 1:1 molar ratio between both reactants and calcium carbonate.
Thus, 0.0125 moles of potassium carbonate could form 0.0125 moles of calcium carbonate, while 0.0175 moles of calcium nitrate could form 0.0175 moles of calcium carbonate. The maximum amount of product is going to be determined by the limiting reactant, i.e. the reactant that provides the least amount of product. In this case, the limiting reactant is potassium carbonate, and the maximum yield of calcium carbonate is 0.0125mol.
For the final step convert this value to grams:
Example Question #1 : Precipitates And Calculations
What is the mass of the solid left over after boiling off 100mL of 0.4M NaCl solution?
None of the available answers
The remaining mass with be equal to the mass of the sodium chloride in the solution. Once the solvent (water) evaporates, the solute will remain.
Atomic mass of sodium is ~23. Atomic mass of chlorine is ~35.5. Molecular mass of NaCl is ~58.5.
Example Question #1 : Using Stoichiometry In Solutions
How much water is necessary to make a solution with a molality of when of sodium chloride are in the solution?
This question is asking us to solve for molality, which has the following equation:
Note how the equation does not ask for liters of solution like molarity, but instead requires the kilograms of solvent used in the solution. By dividing the mass of the sodium chloride by its molar mass, we can solve for the moles of sodium chloride in solution.
This will allow us to solve for the mass of water used in the solution.
This gives us the mass of water required to make the solution.
Example Question #441 : Ap Chemistry
Consider the reaction of potassium carbonate with calcium nitrate to form potassium nitrate and calcium carbonate:
Suppose 50ml of a 0.250M potassium carbonate solution was mixed with 100ml of a 0.175M calcium nitrate solution. What is the maximum amount of calcium carbonate that could be obtained?
First, we must determine how many moles of each reactant begin the reaction by multiplying the molarity by the volume. Don't forget to convert volume to liters!
Next, use the reaction coefficients (i.e. the stoichiometry) to determine how many moles of calcium carbonate could be formed from each of the reactants. In this case, there is a 1:1 molar ratio between both reactants and calcium carbonate.
Thus, 0.0125 moles of potassium carbonate could form 0.0125 moles of calcium carbonate, while 0.0175 moles of calcium nitrate could form 0.0175 moles of calcium carbonate. The maximum amount of product is going to be determined by the limiting reactant, i.e. the reactant that provides the least amount of product. In this case, the limiting reactant is potassium carbonate, and the maximum yield of calcium carbonate is 0.0125mol.
For the final step convert this value to grams: