Practice: AP Chemistry stoichiometry limiting reactant

Master stoichiometry and limiting reactant concepts for the AP Chemistry exam with focused study materials.

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What is stoichiometry?

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The calculation of reactants and products in chemical reactions using balanced equations.

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Quiz(14 domande)

Domanda 1 di 14

1. What is the limiting reactant in the reaction A + 2B → C?

Termini in questo set(16)

What is stoichiometry?

The calculation of reactants and products in chemical reactions using balanced equations.

Define limiting reactant.

The reactant that is completely consumed first, limiting the amount of product formed.

What is the purpose of a balanced equation?

To ensure the law of conservation of mass is followed; atoms are neither created nor destroyed.

True or false: Excess reactant is completely used up.

False, because excess reactant remains after the reaction.

Calculate moles of O₂ from 2 moles of H₂.

2H2+O22H2O\displaystyle 2H₂ + O₂ → 2H₂O yields 1 mole of O₂ for every 2 moles of H₂.

Difference between theoretical yield and actual yield?

Theoretical yield is the maximum possible product, while actual yield is the measured amount produced.

What unit measures moles?

Moles are measured in units of substance, represented by Avogadro's number: 6.022×1023\displaystyle 6.022 \times 10^{23}.

Fill in the blank: The _____ ratio relates moles of reactants to products.

stoichiometric

What is a mole ratio?

A ratio derived from the coefficients of a balanced chemical equation, used in stoichiometric calculations.

Given 5 moles of A and 6 moles of B, which is limiting?

Depends on the reaction equation; need stoichiometric coefficients to determine.

True or false: All reactants in a reaction are limiting.

False, only one reactant can be limiting in a specific reaction.

How to find limiting reactant?

Calculate the amount of product each reactant can produce; the one that produces less is limiting.

What is percent yield?

The ratio of actual yield to theoretical yield, expressed as a percentage: fracactual yieldtheoretical yield×100\displaystyle \\frac{actual \ yield}{theoretical \ yield} \times 100.

Fill in the blank: The _____ is the leftover substance after a reaction.

excess reactant

What happens if the limiting reactant is increased?

Additional product can be formed only if other reactants are also available in sufficient amounts.

True or false: Stoichiometry applies only to gas reactions.

False, stoichiometry applies to reactions in all states (solid, liquid, gas).

Domande in questo set(14)

1. What is the limiting reactant in the reaction A + 2B → C?

A.The reactant used up first
B.The reactant in excess
C.Any reactant
D.The product formed

2. Which statement about excess reactants is true?

A.They are completely consumed
B.They remain after the reaction
C.They always affect yield
D.They are always solids

3. If 10 grams of A react with 20 grams of B, how do you find the limiting reactant?

A.Compare their molar masses
B.Calculate moles and product formed
C.Balance the equation
D.Use a reaction table

4. What is the theoretical yield?

A.Measured product amount
B.Maximum product based on reactants
C.Reactant amount used
D.Amount leftover

5. To determine moles of product formed, you use:

A.Molar mass only
B.Covalent bonds
C.Stoichiometry
D.Temperature

6. Which of the following is NOT a step in finding a limiting reactant?

A.Balancing the equation
B.Calculating reactant moles
C.Calculating product moles
D.Measuring temperature

7. What is the percent yield if the theoretical yield is 50 g and actual yield is 45 g?

A.90%
B.95%
C.85%
D.80%

8. What happens if the limiting reactant is doubled?

A.More product is formed
B.No effect on product
C.Less product is formed
D.All reactants become limiting

9. Which is true about a balanced equation?

A.Shows ratios of all products
B.Indicates phases of reactants
C.Shows theoretical yields
D.All are correct

10. How is the limiting reactant determined in a multi-reactant scenario?

A.By excess reactants
B.By comparing product amounts
C.By initial concentrations
D.By molecular weights

11. What happens if a reactant is present in a 1:4 ratio?

A.One will be limiting
B.Both will be limiting
C.Both are in excess
D.No reaction occurs

12. What is the role of stoichiometric coefficients?

A.Indicate phases
B.Show reaction time
C.Define amount ratios
D.Identify catalysts

13. If 2 moles of A react with 3 moles of B to form C, what is the mole ratio of A to C?

A.1:1
B.2:1
C.3:2
D.1:2

14. What happens to the excess reactant?

A.It increases yield
B.It is consumed
C.It remains after the reaction
D.It is a catalyst

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