Particle model, states and changes of state

Explain states and physical changes using particle arrangement, motion, separation and energy.

  • SEC G3 Combined Science Chemistry component 2027
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Learning objectives

  • describe the solid, liquid and gaseous states of matter and explain their interconversion in terms of the kinetic particle theory and of the energy changes involved.

Your goal is to use particle arrangement, separation, motion and energy to explain states and changes of state without changing the particles themselves.

1. Retrieve what you know

A liquid can flow but is difficult to compress. Before reading on, predict what this tells you about the spacing and movement of its particles.

Check the retrieval

Liquid particles are close together, so there is little empty space to remove, but they are not fixed and can move past one another.

2. Particle model

Particle arrangements in solids, liquids and gasesThree labelled containers compare regular closely packed solid particles vibrating in fixed positions, close irregular liquid particles moving past one another, and widely spaced gas particles moving rapidly and randomly.Solidfixed positions; vibratefixed shape and volumeLiquidmove past one anotherfixed volume; takes container shapeGasrapid random motionfills container; compressible

Solid

Motion: fixed positions; vibrate

Property: fixed shape and volume

Liquid

Motion: move past one another

Property: fixed volume; takes container shape

Gas

Motion: rapid random motion

Property: fills container; compressible

Compare particle arrangement, separation and motion. The particles are the same size in every panel; the arrows and spacing represent motion and separation.
  • In a solid, particles are close together in an ordered arrangement and vibrate about fixed positions.
  • In a liquid, particles remain close together but are disordered and move past one another.
  • In a gas, particles are far apart and move rapidly and randomly.

During melting or boiling, particles absorb energy. During freezing or condensation, particles release energy. State changes alter motion, arrangement or separation; they do not alter particle size or chemical identity.

3. Modelled example: boiling

Modelled example 1

Explain boiling without making new particles

Core

Problem

Explain what happens when liquid water boils.

Study the worked solution
  1. Follow the energy

    Method

    State that the water absorbs energy.

    Reason

    The added energy increases particle motion and helps particles overcome the attractions keeping them close.

    Working

    The particles move more rapidly.
  2. Describe the gas

    Method

    State that the particles become much further apart and move rapidly and randomly.

    Reason

    This describes a gas using the particle model.

    Working

    They remain water particles; boiling is a physical change.

4. Guided attempt: condensation

Guided practice 2

Reverse the energy-and-particle chain

About 4 min

Problem

Water vapour forms liquid drops on a cool surface. Select the energy direction and the particle change.

Try this before viewing the solution

Energy
Separation

Hints

Hint 1: reverse boiling

Condensation reverses the energy, motion and separation changes in boiling.

Hint 2: keep particle identity

Change average separation, not the size or identity of each particle.

View solution step by step
  1. Reverse boiling

    Method

    Release energy and reduce average particle speed.

    Reason

    Condensation is the reverse of vaporisation.

    Working

    Gas particles move less rapidly on average.

  2. Form the liquid

    Method

    Bring the particles much closer together while allowing them to move past one another.

    Reason

    Attractions keep liquid particles close without fixing them in place.

    Working

    Gas becomes liquid; particle identity is unchanged.

5. Misconception contrast

“A substance expands when heated because each particle becomes larger” is incorrect. Heating can increase average separation; each particle keeps its size and identity. Boiling also does not break water particles into hydrogen and oxygen.

6. Changed-context transfer

A solid melts but remains at the same temperature during part of the heating. Explain why energy is still absorbed and describe the arrangement after melting.

Show transfer feedback

Energy is absorbed to overcome attractions sufficiently for particles to leave fixed positions. In the liquid they remain close together but are disordered and move past one another. Constant temperature during the change does not mean that no energy is transferred.

7. Independent check

Without looking back, compare a gas with a liquid in terms of separation and motion, then explain freezing using energy and arrangement. Check that you did not change particle size or identity.