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Electrolysis and extraction of aluminiumIonic half equations

Electrolysis involves using electricity to break down electrolytes to form elements. The products of electrolysis can be predicted for a given electrolyte. Aluminium is one metal which is extracted from its ore by this method.

Part of Chemistry (Single Science)Metals and their extraction

Ionic half equations

A half-equation shows you what happens at one of the during . Electrons are shown as e. A half-equation is balanced by adding, or taking away, a number of electrons equal to the total number of on the in the equation.

When positive metal ions (cations) arrive at the negative electrode (the cathode), they gain electrons to form neutral metal . This is called reduction. For example:

Pb2+ + 2e 鈫 Pb

When negative non-metal ions (anions) arrive at the positive electrode (the anode), they lose electrons to form neutral atoms or . This loss of electrons is called oxidation. For example:

2Br 鈫 Br2 + 2e OR 2Br - 2e 鈫 Br2

One way to remember this is by using the OIL RIG:

Oxidation Is Loss of electrons, Reduction Is Gain of electrons.

Writing half equations

Cations go to the cathode (negative electrode). They need to gain enough electrons to make them neutral. So an Al3+ ion needs to gain three electrons:

Al3+ + 3e 鈫 Al

Half-equations for non-metal anions are more difficult to balance. For example, chloride ions make chlorine gas. Most non-metal elements formed in electrolysis are diatomic molecules (eg Cl2). For example:

2Cl 鈫 Cl2

Add in two electrons to balance the charge so that both sides have the same charge. The two electrons need to go on the right-hand side, so that both sides have an overall charge of 鈥2. For example:

2Cl 鈫 Cl2 + 2e