IB Chemistry SL Topic 1 — The Behaviour of Ideal Gases Paper 1 & 2 Core idea ~7 min read

Ideal Gases

An “ideal gas” is a simplified model — tiny particles zipping about with no forces between them. Real gases aren’t quite like that, but the model works beautifully at low pressure and high temperature, and it’s the foundation of every gas calculation you’ll do.

📘 What you need to know

The kinetic theory of gases

The kinetic theory explains how gases behave by making a few key assumptions about the particles:

Ideal vs real gases

A gas that obeys all of these assumptions is called an ideal gas. No real gas does so perfectly — but under the right conditions they come very close.

The two “ideal” assumptions that real gases break are exactly the two you’ll meet again in the Real Gases note: particles do take up some space, and they do attract each other a little. Low pressure and high temperature are the conditions that make both effects negligible.

Elastic vs inelastic collisions

The idea of a perfectly elastic collision is central. In an elastic collision the total kinetic energy is conserved — particles bounce off each other and move apart with no energy lost. In an inelastic collision, energy is lost and the particles may even stick together.

BEFORE AFTER — elastic bounce apart, energy conserved AFTER — inelastic stick together, energy lost
In an elastic collision particles bounce apart with no loss of kinetic energy; in an inelastic one they lose energy and tend to stick together. Ideal gas collisions are perfectly elastic.

💡 Exam tip

Up next: Molar Gas Volume — how pressure, volume and temperature are linked, through Boyle’s and Charles’ laws.

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