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The Contact Process

Exam code: 5070
Written by: Ashika|Reviewed by: Caroline Carroll|Updated 2 July 2026

The Contact Processvideo

The Contact Process

The Contact Process

  • Sulfuric acid is synthesised by the Contact process

  • Concentrated sulfuric acid is used in car batteries, making fertilisers, soaps and detergents

Raw materials

  • The raw materials for the process are:

    • Sulfur dioxide (SO2)

      • Produced by burning sulfur in air (S + O2 → SO2) or by roasting sulfide ores

    • Oxygen (O2)

      • Obtained from the air

The Key Stage: Oxidation of SO2

  • The most important stage in the Contact process is the reversible oxidation of sulfur dioxide to sulfur trioxide using a vanadium(V) oxide, V2O5, catalyst:

2SO2 + O2 ⇌ 2SO3

  • The conditions for this main stage of production are:

    • A temperature of 450 ºC

    • A pressure of 2 atm (200 kPa)

  • Once sulfur trioxide is formed, it undergoes more processes to produce sulfuric acid

Explaining the Conditions in the Contact Process

Explaining the Conditions in the Contact Process

  • Similar to the Haber process, the pressure and temperature used need to be considered

  • The equation for the main stage of the Contact process is:

2SO2 + O2  ⇌{"language":"en","fontFamily":"Times New Roman","fontSize":"18"}  2SO3

Temperature: 450ºC

  • The forward reaction is exothermic, so increasing the temperature shifts the position of equilibrium to the left in the direction of the reactants

  • Therefore the higher the temperature, the lower the yield of sulfur trioxide

  • The optimum temperature is a compromise between a higher rate of reaction at a higher temperature and a lower equilibrium yield at a higher temperature

Pressure: 2 atm

  • An increase in pressure shifts the position of equilibrium to the right in the direction of a smaller number of gaseous molecules

  • However, the position of equilibrium lies far to the right (the equilibrium mixture contains about 96% sulfur trioxide)

  • So the reaction is carried out at just above atmospheric pressure because:

    • High pressures can be dangerous and very expensive equipment is needed 

    • A higher pressure causes the sulfur dioxide to liquefy