IB Chemistry SL Topic 2 — From Bonding Models to Materials Paper 1 & 2 Materials ~9 min read

Alloys and Their Properties

Pure metals are often too soft to be useful. Mix in a second element and the whole thing gets harder and stronger — without changing the bonding at all. Alloys are the most practical application of the metallic model you will meet.

📚 What you need to know

What an alloy actually is

The word “alloy” sounds like a compound, but it isn’t. Nothing new has been made and no new bonds have formed. The second element’s atoms simply sit in among the metal ions, sharing the same sea of delocalised electrons.

This is possible because metallic bonding is non-directional — a metal ion is attracted to the electrons all around it, not in any particular direction. It doesn’t care whether its neighbour is the same size as itself. Compare that with covalent bonding, where bond angles are fixed and you can’t just drop a different atom in.

PURE METALALLOYsame-sized atoms in neat layerslayers slide easily → soft, malleablea second element of a different sizelayers cannot slide → harder, stronger
The red atoms are a second element. They share the same electron sea, but they break up the neat rows.

Why alloys are harder

Remember why a pure metal is malleable: the ions sit in neat layers that slide over one another when a force is applied. That is exactly what an alloy prevents.

Adding atoms of a different size distorts the regular arrangement. Now a sliding layer runs into an atom that is too big or too small to fit the pattern, and the slip is blocked. More force is needed to deform the metal, which is what we mean by “harder” and “stronger”.

WHY AN ALLOY IS HARDERPURE METALlayers slip cleanlyALLOYdifferent-sized atoms block the slip planethe metallic bonding is unchanged — it is the SHAPE of the lattice that changes
In the pure metal the slip plane is clear. In the alloy a differently sized atom sits right in the way.
Notice what has not changed. The metallic bonding is exactly the same, so the alloy still conducts electricity and heat, still has lustre and still has a high melting point. Only the ease of sliding has changed — because only the geometry of the lattice has changed.

Alloys are often improved in other ways too:

Common alloys

You are not expected to memorise these. They are here so you recognise them if a question uses one as an example:

AlloyMade fromKey propertyTypical uses
BrassCopper + zincStrong, corrosion resistantDoor handles, hinges, musical instruments
BronzeCopper + tinHard, corrosion resistantMedals, sculptures, ship fittings
SteelIron + carbonVery strongConstruction, bridges, cars
Stainless steelIron + chromium + nickel + carbonCorrosion resistantCutlery, surgical instruments, cookware
SolderTin + leadLow melting pointJoining electrical components, jewellery
Steel is the odd one out. Carbon is a non-metal, which shows that an alloy doesn’t have to be metal + metal. The carbon atoms are much smaller than iron atoms, so they slot into the gaps between them and lock the layers in place very effectively — which is why even a small amount of carbon makes iron dramatically stronger.
WORKED EXAMPLE

Explain, in terms of structure, why brass is harder than pure copper.

In pure copper all the ions are the same size They form regular layers that can slide over each other when a force is applied. Brass also contains zinc, whose atoms are a different size These disrupt the regular arrangement of the layers. The distorted lattice makes it harder for layers to slide past one another so brass is harder and stronger than pure copper
WORKED EXAMPLE

An alloy still conducts electricity well. Explain why.

The bonding in an alloy is still metallic Adding a second element does not remove the sea of delocalised electrons. Those electrons are still free to move through the lattice so the alloy still conducts electricity Only the ability of layers to SLIDE has been affected, not the bonding itself.

💡 Exam tip

⚠️ Common mix-up

Up next: Polymers — leaving metals behind for giant molecules built by joining thousands of small ones together.

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