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Dynamic equilibrium, Le Chatelier's principle and Kc

Chimie A-level Updated Wed 7 Oct 2026

Many reactions never go fully to completion. In a closed system they reach a balance where the forward and reverse reactions continue at the same rate. Le Chatelier's principle predicts how that balance shifts, and Kc measures where it lies.

Part 1 of 3: Learn it

In short

  1. At dynamic equilibrium, forward and reverse rates are equal, so concentrations stay constant.
  2. If a condition changes, the position of equilibrium shifts to oppose the change.
  3. For aA + bB ⇌ cC + dD, Kc = [C]ᶜ[D]ᵈ ÷ ([A]ᵃ[B]ᵇ); only temperature changes Kc.

Where this is in your specification

Spec points: AQA 7405 3.1.6.1 and 3.1.6.2, OCR A H432 3.2.3 and 5.1.2, Edexcel 9CH0 Topics 10 and 11

BoardTopic: Equilibria, Kc and Kp
AQA 74053.1.6 and 3.1.10
Edexcel 9CH0Topics 10 and 11
OCR H4323.2.3 and 5.1.2
Higher C813 763(d) Equilibria

Dynamic equilibrium

It needs a closed system. Both reactions are still happening, which is what dynamic means, but because their rates are equal the amounts of each substance do not change.

Le Chatelier's principle

ChangeShift in positionEffect on Kc
Add a reactantto the right, using it upnone
Increase pressure (gases)towards the side with fewer gas molesnone
Increase temperaturein the endothermic directionchanges
Add a catalystno shift; equilibrium is reached soonernone

The equilibrium constant Kc

  • Write products over reactants, each concentration raised to the power of its number in the equation.
  • Use equilibrium concentrations in mol dm⁻³, not starting amounts.
  • Work out the units by cancelling the mol dm⁻³ terms. If the powers balance, Kc has no units.
  • A large Kc means the equilibrium lies to the right (mostly products).
Quick check

What effect does a catalyst have on the position of equilibrium?

Show the answer

None: it speeds up the forward and reverse reactions equally.

Part 2 of 3: See it worked

Worked examples

Example 1

For H₂(g) + I₂(g) ⇌ 2HI(g), the equilibrium concentrations are [H₂] = 0.10, [I₂] = 0.20 and [HI] = 0.80 mol dm⁻³. Find Kc.

  1. Kc = [HI]² ÷ ([H₂][I₂])
  2. = 0.80² ÷ (0.10 × 0.20) = 0.64 ÷ 0.020
  3. Units: (mol dm⁻³)² ÷ (mol dm⁻³)² cancel

Answer: Kc = 32, with no units.

Example 2

1.00 mol each of A and B are mixed in 1.00 dm³ and react: A + B ⇌ C + D. At equilibrium there is 0.40 mol of C. Find Kc.

  1. C and D: 0.40 mol each; A and B: 1.00 − 0.40 = 0.60 mol each
  2. Volume 1.00 dm³, so concentrations equal these amounts
  3. Kc = (0.40 × 0.40) ÷ (0.60 × 0.60) = 0.16 ÷ 0.36

Answer: 0.44 (2 s.f.), no units.

Common mistakes

  • Using starting amounts instead of equilibrium amounts in Kc.
  • Saying a catalyst increases the yield.
  • Saying that changing pressure or concentration changes Kc.
  • Forgetting to divide moles by volume when the volume is not 1 dm³.
Quick check

For N₂ + 3H₂ ⇌ 2NH₃ (ΔH negative), what happens to the yield of ammonia if the temperature rises?

Show the answer

It falls, because the equilibrium shifts in the endothermic (reverse) direction.

Part 3 of 3: Test yourself

Check yourself

Answer each one in your head or on paper first, then open it to check.

What effect does a catalyst have on the position of equilibrium?

None: it speeds up the forward and reverse reactions equally.

For N₂ + 3H₂ ⇌ 2NH₃ (ΔH negative), what happens to the yield of ammonia if the temperature rises?

It falls, because the equilibrium shifts in the endothermic (reverse) direction.

What are the units of Kc for N₂ + 3H₂ ⇌ 2NH₃?

mol⁻² dm⁶.

Jobs that use this

Each link opens the job profile on the National Careers Service (England). In the rest of the UK: My World of Work (Scotland), Careers Wales, nidirect careers (Northern Ireland).

Ces fiches sont en anglais car elles suivent les programmes d'examen britanniques.

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