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GCSE Combined Science

Rate and Extent of Chemical Change

34 questions4 subtopicsAQAEdexcelOCREduqas
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What's covered

Reversible Reactions and Equilibrium11
Factors Affecting Rate8
Measuring Rate8
Catalysts7

Key facts

1

Catalysts

A catalyst is a substance that speeds up a reaction without being used up.

2

Factors Affecting Rate

Collision theory is the theory that explains how reactant collisions lead to a reaction.

3

Measuring Rate

Colorimetry measures how much light is absorbed by a coloured solution.

4

Reversible Reactions and Equilibrium

Increasing the concentration of a reactant shifts the equilibrium toward the products (and vice versa).

5

Catalysts

A catalyst increases the rate of both the forward and reverse reactions in a reversible reaction by the same amount, so the equilibrium position is unchanged.

6

Factors Affecting Rate

Increasing concentration speeds up a reaction because particles collide more frequently.

7

Measuring Rate

Gas production rate can be measured using a gas syringe or an inverted measuring cylinder.

8

Reversible Reactions and Equilibrium

At dynamic equilibrium, the forward and reverse reactions are both still occurring, but at equal rates, so net concentrations stay constant.

9

Catalysts

A catalyst speeds up a reaction by providing an alternative reaction pathway with a lower activation energy.

10

Factors Affecting Rate

Increasing the concentration of a reactant in solution increases the reaction rate because more reactant particles per unit volume means more successful collisions per second.

Sample questions

A taste of the 34 questions in this topic, answers marked. Sign up to practise the full set with spaced repetition.

1Catalysts

How does a catalyst speed up a reaction?

  • •It increases the concentration of the reactants
  • ✓It provides an alternative reaction pathway with a lower activation energy
  • •It raises the temperature of the reaction mixture
  • •It reacts with the reactants to form an intermediate product
2Factors Affecting Rate

How does increasing the concentration of a reactant in solution increase the reaction rate?

  • •Higher concentration raises the activation energy, slowing the reaction
  • •Higher concentration slows particles and reduces collisions per unit time
  • ✓More reactant particles per unit volume — more successful collisions per second
  • •Particles become larger at higher concentration and collide with more force
3Measuring Rate

Which two methods measure the rate of a gas-producing reaction?

  • ✓Gas syringe volume over time, or mass loss on a balance
  • •Temperature rise of the mixture, or colour change with a colorimeter
  • •Titrate remaining acid at intervals, or measure electrical conductance
  • •Watch for reactants dissolving, or time until the solution turns clear
4Reversible Reactions and Equilibrium

According to Le Chatelier's principle, if the pressure in a gaseous equilibrium is increased, what happens?

  • •Equilibrium is unchanged — pressure does not affect equilibrium
  • ✓Equilibrium shifts to the side with fewer moles of gas, lowering pressure
  • •Equilibrium shifts to the side with more moles of gas
  • •Rate of both forward and reverse reactions decreases
5Catalysts

Why are catalysts important in many industrial chemical processes?

  • •They increase the equilibrium yield by shifting the position in favour of products
  • •They permanently convert reactants into more valuable industrial products
  • •They prevent dangerous side reactions by being chemically used up first
  • ✓They speed up reactions at lower temperatures, saving energy and cost
6Factors Affecting Rate

Why does increasing gas pressure speed up reactions?

  • •Higher pressure heats the reactants
  • ✓Particles are closer together, increasing collisions
  • •Pressure attracts catalyst molecules
  • •Pressure changes activation energy

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