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  1. KS3
  2. Chemistry
  3. Particles and their behaviour
  4. Solids, liquids and gases

Particles and their behaviour · Contrast

Solids, liquids and gases

Ice, water and steam are the same substance and the same particles. So what exactly is different about them?

Start here

A steel girder on a hot day.

A bridge is longer in August than in January — by centimetres, enough that bridges are built with gaps to swallow it. The steel gains nothing and loses nothing. The same iron particles are there in both months, and there are exactly as many of them.

So what got bigger?

Three states, one substance. The particles do not change — not their size, not their mass, not what they are. What changes is how close together they sit and how much they move. Every difference you can see and feel between ice, water and steam comes out of those two things.

The state bench · watch one substance

Same particles. Three arrangements.

0 of 3 states seen

Commit first. In a block of ice sitting in a freezer, what are the particles doing?

The contrast, in one table

What each arrangement forces to be true

Nothing in this table is a fact to memorise separately. Every row is a consequence of the two rows above it.

PropertySolidLiquidGas
ArrangementRegular rows, all touchingTouching, but jumbledFar apart, random
MovementVibrating on the spotSliding over each otherFast, in all directions
ShapeKeeps its ownTakes the container’sFills the container
VolumeFixedFixedFills whatever it is given
Can it be squashed?Almost not at allAlmost not at allEasily
Can it be poured?NoYesIt escapes instead

The highlighted row is the one your current bench setting is showing.

Key fact

The state of a substance is set by how its particles are arranged and how fast they move — never by any change in the particles themselves.

Think again

“When ice melts, the particles go soft and squash into the new shape.”

This is the most common wrong idea in the whole of KS3 physical science, and it is worth catching now, because it will follow you into pressure, expansion and density. Commit before you read on.

Mastery ladder

Not started yet.

Rungs 3 and 4 you mark yourself.

Rung 1 · Recall

Which state has particles that are close together but not in a regular pattern?

Rung 2 · The one that catches people

A gas can be squashed into a fifth of its volume. A liquid hardly squashes at all. Why not?

Rung 3 · Explain

A gas fills any container it is put in; a liquid of the same amount sits in a puddle at the bottom. Explain both, using the arrangement and movement of the particles.

Rung 4 · Take it somewhere new

A steel railway rail is 30 m long in winter and about 1 cm longer on a hot summer day. Explain what has happened to the particles, and say clearly what has NOT happened.

Key note

Solid: touching, ordered, vibrating in place. Liquid: touching, disordered, sliding past each other. Gas: far apart, disordered, moving fast and freely. The particles are identical in all three.

Going further

Three states is a school simplification, and a good one — it covers almost everything you will meet. But glass is a genuine embarrassment to it: it holds its shape like a solid while its particles sit in the jumbled arrangement of a liquid, so it is neither, and arguments about which box it belongs in have been running for a century. Liquid crystals, the material in the screen you may be reading this on, flow like a liquid while staying lined up like a solid. And most of the matter in the universe is in a fourth state, plasma, which is what stars are made of. None of this makes the three-state model wrong. It makes it a model, with edges, exactly like Dalton's will turn out to be.

Before this lesson

Next in this unit

At GCSE this becomes

Where to next

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