B.1.1—Molecular states
- Syllabus
- First assessment 2025
- Objective
- —
- Level
- HL
Particle view
Matter is made of particles in continuous random motion. The state depends mainly on how closely particles are packed, how freely they move and how strongly intermolecular forces hold them together.
Compare the three states
| State | Arrangement and separation | Motion | Macroscopic consequence |
|---|---|---|---|
| Solid | closely packed, ordered or locally fixed | vibrate about fixed positions | fixed shape and volume |
| Liquid | close together but not fixed in a lattice | move and slide past neighbours | fixed volume, takes container shape |
| Gas | widely separated | move freely between collisions | no fixed shape or volume |
Use temperature carefully
At the same temperature, particles have the same average kinetic energy in the kinetic-theory model. The different states are then distinguished by separation and intermolecular forces, not by claiming that one state automatically has hotter particles.
Common trap
Do not describe a solid as having motionless particles. “Fixed position” means the particles oscillate about equilibrium positions; it does not mean their kinetic energy is zero.
The evidence shows structured comparison and application: compare solid and gas at the same temperature, or connect the anomalous density of water to why lakes can remain liquid below surface ice.
Compare / Discuss / Describe
For compare/discuss questions, award each distinct physical comparison explicitly: solid has stronger intermolecular forces, smaller separations and vibration about fixed positions; gas has weaker effective forces, larger separations and freer motion. At the same temperature, state that the average particle kinetic energy is the same. For the water-density application, link water at 4 °C sinking and surface ice to insulation of liquid below.
Saying particles in a solid are motionless, or listing properties without explicitly comparing the states.
Representative question
Compare the molecular conditions of the solid phase and the gas phase at the same temperature.
gases have no/weaker intermolecular forces/bonds <<than for solids>>
gases larger intermolecular distances <<than for solids>>
molecules in gases move freely <<but in solids do not>>
<<same temperature so>> same Ek
Marking guidance:
Accept reverse arguments
3 max
Microscopic story
Matter contains moving particles. Temperature tracks average random kinetic energy, while internal energy also includes intermolecular potential energy. Phase changes alter particle behaviour at constant temperature.
Transfer story
A temperature difference gives the net direction of thermal energy transfer. Conduction transfers energy through local interactions, convection through moving fluids, and radiation through electromagnetic waves.
Equation map
ρ=Vm
Q=mcΔT,Q=mL
ΔtΔQ=ΔxkAΔT
L=σAT4
b=4πd2L
λmaxT=2.9×10−3mK
Question strategy