The Air Freshener That Vanishes: Observing Sublimation and Deposition
Most students learn the familiar sequence of changes of state:
solid -> liquid -> gas
Ice melts into water. Water boils or evaporates into water vapour. Cool the vapour sufficiently and it condenses back into a liquid.
However, not every substance follows that familiar route under ordinary laboratory conditions. Some solids can change directly into a gas without first becoming a visible liquid.
This process is called sublimation.
The reverse process, in which a gas changes directly into a solid, is called deposition:
solid -> gas = sublimation
gas -> solid = deposition
A coloured block of solid air freshener provides a particularly memorable demonstration because it does more than show a change of state. It also reveals how sublimation can separate one substance from another.
The coloured block gradually disappears, yet the material that collects on the cold surface above it is white.
Where has the colour gone?
That simple observation opens the door to discussions about particles, intermolecular forces, mixtures, purification and industrial chemistry.
An Important Safety Warning
This is not an experiment to attempt at home.
Heating solid air freshener considerably increases the amount of vapour released. Some solid products contain harmful substances, and suitable demonstrations must therefore be performed in a functioning fume cupboard or with another properly assessed method of containing the vapour.
The demonstration should be carried out by a trained teacher or technician using an identified product, its current safety data sheet and an appropriate institutional risk assessment. Eye protection should be worn, and the solid should be handled with suitable tools rather than directly by hand.
Gel air fresheners are not suitable because they do not behave in the same way as the solid blocks used for this demonstration. The Royal Society of Chemistry recommends this as a teacher demonstration and specifies a fume cupboard because heating can cause potentially harmful concentrations of vapour to build up.
The Basic Demonstration
The apparatus is conceptually simple.
A few small pieces of a suitable coloured solid air freshener are placed in the bottom of a glass container. The container stands in a warm water bath at a temperature above approximately 45 C.
A second glass container containing ice is securely supported above the air freshener. The cold container must not touch the solid sample, and the entire arrangement must be stable.
The warm water gently heats the solid air freshener. The ice provides a cold surface on which the vapour can deposit.
The Royal Society of Chemistry uses this arrangement specifically to show a solid changing directly into a vapour and then returning directly to the solid state on a cold surface.
What Should Students Observe?
The experiment requires patience. It is not necessarily an immediate, spectacular reaction involving flames, flashes or sudden colour changes.
Instead, students should watch for several gradual but scientifically important observations.
1. The coloured block becomes smaller
As the air freshener is warmed, material leaves its surface. The block slowly shrinks.
It may look as though it is simply “vanishing”, but matter is not being destroyed. Its particles are escaping from the solid and entering the gas phase.
2. No pool of liquid appears
This is the essential observation.
If the air freshener were melting, students would expect to see liquid collecting around the remaining solid. Instead, the solid becomes smaller without producing an obvious liquid phase.
The change is:
solid -> gas
not:
solid -> liquid -> gas
3. A solid deposit appears on the cold surface
The vapour rises through the container and reaches the ice-cooled glass above it.
The colder surface removes energy from the vapour particles. They can no longer remain in the gas phase and form a solid deposit.
The change is:
gas -> solid
This is deposition.
4. The new deposit is white
This is often the most surprising part of the entire demonstration.
The original air freshener may be blue, green, pink or another strong colour, yet the solid deposited on the cold glass is usually white.
The coloured dye has not travelled with the main subliming substance. It remains behind because it is a separate component of the mixture and is not sufficiently volatile under the conditions used.
The experiment therefore demonstrates both a change of state and a simple method of separation.
Why Does the Solid Sublime?
The particles in a solid are not completely motionless. They vibrate around relatively fixed positions.
When the solid is warmed, its particles gain energy. Some particles at the surface eventually have sufficient energy to overcome the attractive forces holding them within the solid.
They escape directly into the gas phase.
The energy change can be represented simply as:
solid + energy -> gas
Sublimation is therefore an endothermic process because the substance absorbs energy from its surroundings.
The water bath is important because it supplies heat gently and evenly. It avoids the intense local heating that could occur if the glass container were placed directly over a flame.
Increasing the temperature also increases the rate at which particles escape from the solid. This is why a warmed block disappears more rapidly than a block left at room temperature.
The RSC suggests that, where safely possible within the fume cupboard, a separate sample can be left at room temperature so that students can compare the rates of sublimation.
Why Does Deposition Occur Beneath the Ice?
After leaving the warm solid, the vapour particles move through the space inside the apparatus.
When they strike the cold glass, energy is transferred from the particles to the cooler surface and its surroundings. As their kinetic energy decreases, attractive forces can hold them together again.
A new solid forms directly from the gas:
gas -> solid + energy transferred to surroundings
The ice-filled container is sometimes described as a simple cold finger. In more advanced laboratory equipment, a cold finger is a cooled surface designed to collect vapour as a solid or liquid.
The position of the deposit matters. Students should notice that most of the solid forms on or close to the coldest region rather than being distributed evenly throughout the apparatus.
This provides evidence that temperature influences where deposition takes place.
Where Has the Colour Gone?
The colour has not been destroyed.
A coloured air freshener block is a mixture. It contains the substance responsible for the main solid block together with relatively small amounts of dyes, fragrances and possibly other ingredients.
The dye gives the original block its appearance, but it is not necessarily chemically bonded to the substance that sublimes.
When the block is warmed:
the more volatile solid enters the gas phase;
the less volatile dye remains behind;
the vapour reaches the cold surface;
the purified substance deposits as a white solid.
The experiment is therefore similar in principle to separating a solvent from a dissolved solid by distillation. The difference is that this separation involves a direct solid-to-gas change rather than boiling a liquid.
The white deposit is powerful evidence that the colour was produced by a separate component of the mixture.
A Physical Change, Not a Chemical Reaction
Students sometimes assume that heating automatically means that a chemical reaction has occurred.
That is not necessarily true.
In this demonstration, the substance that leaves the original block forms the same substance again on the cold surface. Its state and physical location have changed, but its chemical identity has not intentionally been changed.
This is a physical change:
solid substance -> gaseous substance -> solid substance
There is no requirement for new chemical bonds to form between different elements, and no new compound needs to be produced.
The apparent disappearance of the block should not be confused with burning. Nothing is being deliberately combusted, and no flame should be involved.
The Experiment as a Purification Technique
This demonstration is more than an unusual example of the particle model. It also shows how chemists can purify substances.
Suppose a solid contains:
a substance that sublimes readily;
a second substance that does not sublime at the same temperature.
Heating the mixture allows the first substance to enter the gas phase. The non-subliming impurity remains in the original container.
The vapour can then be collected on a cold surface as a cleaner solid.
In simplified form:
impure coloured solid -> vapour + coloured residue
vapour -> purified white solid
The Open University’s practical material similarly describes coloured air freshener producing a white crystalline collection because the dye does not sublime with the main substance.
This is a useful bridge between school-level changes of state and more advanced ideas about separation and purification.
What Is Actually in the Air Freshener?
The composition of commercial products varies, which is one reason teachers must identify the product and check its safety information before using it.
Some solid products historically used for this demonstration contain 1,4-dichlorobenzene, also known as para-dichlorobenzene. Its formula,
C6H4Cl2
However, it would be unsafe to assume that every solid air freshener contains the same substance. Product formulations can differ, and suitability must be established from the label and safety data rather than appearance alone.
The RSC identifies some products containing 1,4-dichlorobenzene as suitable while also classifying the material as harmful and dangerous to the environment, requiring handling in a fume cupboard.
Questions to Ask During the Demonstration
A strong practical lesson should do more than show students something unusual. It should encourage them to explain what they are seeing.
Useful questions include:
Before heating
What do you predict will happen to the block?
Will it melt, burn, dissolve or disappear?
Where might any escaping material go?
Why has ice been placed above the sample?
During the demonstration
Is there any evidence that a liquid has formed?
Where does the first visible deposit appear?
Why is the deposit forming on the cold surface?
What is happening to the particles in the warm solid?
Why is the original block becoming smaller?
After the demonstration
Why is the collected solid white?
What evidence suggests that the original block was a mixture?
Is this a physical change or a chemical change?
How could the demonstration be used as a purification method?
What variables could affect the rate of sublimation?
Turning the Observation into an Investigation
Because of the hazards involved, students should not independently alter the apparatus or repeat the procedure themselves. However, they can still analyse teacher-collected data or observations.
Possible variables for discussion include:
Temperature of the water bath
A warmer bath would generally increase the rate of sublimation because more particles would have enough energy to escape from the solid.
Surface area of the air freshener
Small pieces have a greater total surface area than one large block of the same mass. More particles are exposed at the surface, potentially increasing the rate of sublimation.
Distance to the cold surface
Changing the distance could affect how much vapour reaches the cooled region and where the solid is deposited.
Temperature of the collecting surface
A colder surface may collect vapour more effectively because particles lose energy more rapidly when they collide with it.
Time
Students could examine how the amount of deposited material changes over a fixed period.
These extensions allow the demonstration to support discussions about variables, fair testing, evidence and experimental design without encouraging unsafe unsupervised work.
Common Misconceptions
“The solid has evaporated”
Evaporation normally describes particles escaping from the surface of a liquid. The starting material here is a solid, so the appropriate term is sublimation.
“The white material is frozen air freshener”
The phrase is misleading because the substance has not necessarily passed through a liquid state and frozen. It has deposited directly from vapour to solid.
“The ice has turned the vapour white”
The cold surface has not bleached the dye. The main subliming substance and the dye have been separated because they have different volatilities.
“The missing colour has been chemically destroyed”
The dye largely remains with the original material. Its failure to appear in the deposit is evidence of separation, not necessarily decomposition.
“No liquid means nothing has happened”
A gas can be difficult to see. The solid deposit above the sample provides evidence that material travelled through the apparatus even though the vapour itself may not have been visible.
Wider Examples of Sublimation
Sublimation is not limited to laboratory air fresheners.
Dry ice
Solid carbon dioxide changes directly into carbon dioxide gas at normal atmospheric pressure. It does not form a pool of liquid carbon dioxide under ordinary classroom conditions.
Snow and ice
Snow can gradually disappear on a cold, dry day even when the temperature remains below its melting point. Some water molecules escape directly from the ice into the atmosphere.
Freeze-drying
Food and biological materials can be frozen and placed under reduced pressure. Water is removed by sublimation, helping preserve the material without conventional heating.
Purification of solids
Chemists can use controlled sublimation to separate a volatile solid from less volatile impurities.
Vapour deposition in industry
Related deposition processes are used to create thin coatings and specialised materials in electronics, optics and manufacturing. The classroom apparatus is extremely simple, but the underlying principle has significant industrial importance.
Why This Demonstration Is So Memorable
I particularly value experiments in which a small visual detail forces students to rethink what they thought they understood.
At first, the shrinking block is interesting. The absence of a liquid is puzzling. The appearance of a solid above the sample provides an explanation.
Then students notice the colour.
That white deposit turns a straightforward change-of-state demonstration into something much richer. It shows that the original block was a mixture and that physical properties can be used to separate its components.
It also reminds us why practical science matters.
A diagram can show an arrow from solid to gas. A textbook can define sublimation in one sentence. Neither has quite the same impact as watching a brightly coloured solid slowly disappear and reappear somewhere else as a white crystalline deposit.
The experiment gives the particles a story:
they gain energy;
they escape from the solid;
they move through the apparatus;
they lose energy at the cold surface;
they assemble into a new solid;
they leave the dye behind.
Conclusion: Matter Has Not Vanished
The sublimation of solid air freshener is an excellent example of how a modest-looking demonstration can reveal several important scientific ideas at once.
It shows that:
some solids change directly into gases;
gases can change directly back into solids;
heating increases particle energy;
cooling encourages deposition;
commercial products may be mixtures;
substances can be separated because they have different physical properties;
sublimation can be used as a method of purification.
Most importantly, it challenges the idea that every solid must melt before becoming a gas.
The air freshener has not vanished. Its particles have moved, changed state and collected in a different place.
And the missing colour provides the final clue: sometimes the most interesting result is not simply where a substance goes, but what it leaves behind.


