12.4 Separation and purification
- Syllabus
- 0620–2026–2027
- Topic
- 12.4
- Level
- —
| Method | Property used | Essential process | Product obtained |
|---|---|---|---|
| suitable solvent | difference in solubility | dissolve the soluble component, then separate the undissolved material | selected soluble or insoluble component |
| filtration | insoluble solid particles do not pass through filter paper | pour mixture through filter | residue = insoluble solid; filtrate = liquid/solution |
| crystallisation | solubility usually decreases as a hot saturated solution cools | concentrate to near saturation, cool, filter and dry crystals | dissolved solid as crystals |
| simple distillation | solvent has a lower boiling point than dissolved solute | boil, condense vapour and collect distillate | solvent/purer liquid from a solution |
| fractional distillation | miscible liquids have different boiling points | heat through a fractionating column and collect fractions at their boiling ranges | separated liquids |
In crystallisation, cooling reduces the amount of solute that can remain dissolved, so excess solute forms crystals. Filter, wash with a little cold solvent and dry the crystals.
Distillation separates by vaporising and condensing. Simple distillation is used for a solvent from a solution; fractional distillation repeatedly separates vapours in the column when several liquids are present.
Evaporation alone may recover a dissolved solid but does not collect the solvent. Filtration cannot remove a dissolved solute because dissolved particles pass through the filter paper.
Choose the technique from the substances' physical states, solubilities and boiling points, and first decide which component must be collected.
| Information about the mixture | Suitable choice |
|---|---|
| insoluble solid + liquid/solution | filtration |
| dissolved solid wanted from solution | crystallisation |
| solvent wanted from a solution | simple distillation |
| two or more miscible liquids with different boiling points | fractional distillation |
| one solid dissolves in a chosen solvent and another does not | add suitable solvent → filter → recover dissolved solid from filtrate |
| precipitate formed in an aqueous reaction | filter, wash residue and dry |
Nickel(II) sulfate dissolves in water but sand does not: warm with water, filter off sand, then concentrate and cool the filtrate to crystallise nickel(II) sulfate.
A complete choice states both the property difference and the sequence. 'Use filtration because the desired precipitate is insoluble in the liquid' is stronger than naming filtration alone.
Do not choose a technique from the substance names alone. The same technique may be right or wrong depending on solubility, boiling point, physical state and which fraction is wanted.
A pure substance has characteristic melting and boiling points. Compare measured values with reliable reference data to support identification and assess purity.
| Measurement | Pure sample | Impure sample |
|---|---|---|
| melting | sharp melting point at the characteristic value | usually melts lower and over a range |
| boiling | sharp boiling point at the characteristic value | usually boils higher and over a range |
If a liquid boils sharply at the reference boiling point for substance X, the result supports the identity and purity of X. A different value or a boiling range suggests that the sample is not pure X.
A solid with a reference melting point of 80 °C that melts sharply at 80 °C is consistent with the pure substance. Melting gradually from 74–78 °C indicates impurity.
A temperature match is evidence, not proof by itself. Use the correct property for the sample and compare under the same stated conditions; boiling point also depends on pressure.