Limiting Reactants (AQA GCSE Chemistry: Combined Science)

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Limiting & excess reactant

Higher tier only

  • A chemical reaction does not go on indefinitely and stops when one of the reagents is used up
  • The reagent that is used up first is the limiting reactant, as it limits the duration of the reaction and hence the amount of product that a reaction can produce
  • The one that is remaining is the excess reactant
  • The limiting reagent is the reactant which is not present in excess in a reaction
  • The amount of product obtainable is therefore directly proportional to the amount of the limiting reagent added at the beginning of a reaction
  • So, if you use half of the limiting reagent then you will get half of the product, provided the other reagents are present in excess. If you double the amount of the limiting reagent then you obtain double the amount of product

Determining the limiting reactant

Higher tier only

  • In order to determine which reactant is the limiting reagent in a reaction, we have to consider the amounts of each reactant used and the molar ratio of the balanced chemical equation
  • When performing reacting mass calculations, the limiting reagent is always the number that should be used, as it indicates the maximum possible amount of product that can form
    • Once all of a limiting reagent has been used up, the reaction cannot continue

  • The steps are:

    1. Convert the mass of each reactant into moles by dividing by the molar masses
    2. Write the balanced equation and determine the molar ratio
    3. Look at the equation and compare the moles

Worked example

Limiting reactant question

9.2 g of sodium is reacted with 8.0 g of sulfur to produce sodium sulfide, Na2S. Which reactant is in excess and which is the limiting reactant?

Answer:

  • Step 1: Write the balanced equation and determine the molar ratio
    • 2Na + S → Na2S so the molar ratios is 2 : 1
  • Step 2: Calculate the moles of each reactant
    • Moles = Mass ÷ Ar
    • Moles Na = 9.2/23 = 0.40
    • Moles S = 8.0/32 = 0.25
  • Step 3: Compare the moles
To react completely 0.40 moles of Na requires 0.20 moles of S and since there are 0.25 moles of S, then S is in excess. Na is therefore the limiting reactant.

Examiner Tip

For a reactant to be present in excess, there only needs to be slightly more of it present than the other reactant, as determined from the molar ratio. In a two-reactant system, if one reactant is in excess then the other is by default the limiting reagent.

A common error is to determine the limiting reactant as the reactant with the least amount of moles in the molar ratio. This is incorrect as the masses of each reactant must also be considered.

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Stewart

Author: Stewart

Expertise: Chemistry Lead

Stewart has been an enthusiastic GCSE, IGCSE, A Level and IB teacher for more than 30 years in the UK as well as overseas, and has also been an examiner for IB and A Level. As a long-standing Head of Science, Stewart brings a wealth of experience to creating Exam Questions and revision materials for Save My Exams. Stewart specialises in Chemistry, but has also taught Physics and Environmental Systems and Societies.