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Self-Ionisation of Water Simplified Revision Notes

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Self-Ionisation of Water

What is Self-Ionisation of Water?

Water is a neutral molecule, but it can undergo a process called self-ionisation or auto-ionisation, where a small fraction of water molecules react with each other to form ions.

In this reaction, one water molecule donates a proton (H+H^+) to another water molecule, producing a hydronium ion (H3O+H_3O^+) and a hydroxide ion (OHOH^-).

This reaction can be represented as:

2H2OH3O++OH2H_2O \rightleftharpoons H_3O^+ + OH^-

However, in simplified notation, we often use:

H2OH++OHH_2O \rightleftharpoons H^+ + OH^-

This process is reversible and establishes a dynamic equilibrium.

Ionic Product of Water (KwK_w)

The ionic product of water (KwK_w) is the equilibrium constant for the self-ionisation of water.

It quantifies the concentration of H+H^+ and OHOH^- ions in pure water and is given by the equation:

Kw=[H+][OH]K_w = [H^+][OH^-] At 25°C, Kw=1.0×1014mol2dm6\text{At 25°C,}\ K_w = 1.0 \times 10^{-14} \, \text{mol}^2 \, \text{dm}^{-6}

In pure water, the concentrations of H+H^+ and OHOH^- are equal.

Thus, [H+]=[OH][H^+] = [OH^-] , so:

[H+]=[OH][H^+] = [OH^-] =Kw=1.0×107moldm3= \sqrt{K_w} = 1.0 \times 10^{-7} \, \text{mol} \, \text{dm}^{-3}

This gives water a neutral pH of 7 at 25°C.

Effect of Temperature on KwK_w

The value of KwK_w increases as temperature increases because the self-ionisation of water is an endothermic reaction.

As a result, at higher temperatures, more H+H^+ and OHOH^- ions are produced.

However, even though the concentration of ions increases, water remains neutral because the concentrations of H+H^+ and OHOH^- remain equal.

infoNote

For example:

  • At 25°C, Kw=1.0×1014K_w = 1.0 \times 10^{-14}
  • At 50°C, Kw5.5×1014K_w \approx 5.5 \times 10^{-14} Thus, the pH of pure water decreases slightly with increasing temperature but does not imply acidity; water remains neutral at each temperature.

pH of Water and Relationship to KwK_w

The pH of a solution is related to the concentration of H+H^+ ions:

pH=log[H+]\text{pH} = -\log[H^+]

For pure water at 25°C, since [H+]=1.0×107[H^+] = 1.0 \times 10^{-7}

pH=log(1.0×107)=7\text{pH} = -\log(1.0 \times 10^{-7}) = 7

At higher temperatures, since KwK_w increases, the concentration of H+H^+ increases and the pH decreases. However, the solution is still neutral because the [H+][H^+] and [OH][OH^-] concentrations are equal.

infoNote

Key Points for Exam Preparation

  • Understand that KwK_w increases with temperature because the self-ionisation of water is endothermic.
  • Pure water has equal concentrations of H+H^+ and OHOH^-, making it neutral at any temperature.
  • You should know how to calculate pH from KwK_w values and the concentration of H+H^+
  • The pH of pure water is 7 at 25°C, but can vary at different temperatures while remaining neutral.
infoNote

Example: Find the pH of pure water at 25°C. Given:

Kw=1.0×1014mol2dm6K_w = 1.0 \times 10^{-14} \, \text{mol}^2 \, \text{dm}^{-6}

Since [H+]=[OH][H^+] = [OH^-], then

[H+]=Kw=1.0×107moldm3[H^+] = \sqrt{K_w} = 1.0 \times 10^{-7} \, \text{mol} \, \text{dm}^{-3}

Calculate pH:

pH=log(1.0×107)=7\text{pH} = -\log(1.0 \times 10^{-7}) = 7

Thus, the pH of pure water at 25°C is 7.

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