Uploaded August 2020 | Updated September 2026, 2 weeks ago
How to make a fructose kaleidoscope.
Equipment: 200 g fructose, 50 mL hot water, heat resistant jug, glass, flashlight, coffee filter, 2 polarizing filters.
Dissolve 200 g of fructose in 50 mL of hot water in a heat-resistant jug. * If the fructose doesn't dissolve readily, heat the solution in a water bath. Pour the resulting viscous solution into a glass. Take a flashlight and trim a paper coffee filter to fit just inside its glass cover – this will serve to diffuse the light it emits. Arrange the objects in the following sequence: flashlight, polarizing filter, fructose solution, polarizing filter. Just turn the flashlight on and watch the colors in the glass swirl and change as you rotate the filter closest to you!
In addition to color and intensity, light has a property invisible to the naked eye known as polarization. Polarization determines the orientation of the vibrations of waves such as light. Sunlight or light from a light bulb is said to be “unpolarized” – its waves are polarized randomly in all orientations. A polarizing filter selects for just one direction of polarization. Two polarizing filters working in tandem will let through different amounts of light depending on how they are positioned relative to each other. The fructose solution affects the direction of polarization of the light passing through it – and it even changes the polarizations of different colors of light differently. Thus, the light is polarized by the first filter, enters the fructose solution, changes its polarization at different rates depending on color, and then hits the second filter, which only lets through colors with a suitable polarization. The scattered rays of light travel different distances, creating cool colored patterns!
Cool experiments await you in the MEL Physics subscription!
Safety precautions: Warning! Only under adult supervision.
How to make a fructose kaleidoscope.
Equipment: 200 g fructose, 50 mL hot water, heat resistant jug, glass, flashlight, coffee filter, 2 polarizing filters.
Dissolve 200 g of fructose in 50 mL of hot water in a heat-resistant jug. * If the fructose doesn't dissolve readily, heat the solution in a water bath. Pour the resulting viscous solution into a glass. Take a flashlight and trim a paper coffee filter to fit just inside its glass cover – this will serve to diffuse the light it emits. Arrange the objects in the following sequence: flashlight, polarizing filter, fructose solution, polarizing filter. Just turn the flashlight on and watch the colors in the glass swirl and change as you rotate the filter closest to you!
In addition to color and intensity, light has a property invisible to the naked eye known as polarization. Polarization determines the orientation of the vibrations of waves such as light. Sunlight or light from a light bulb is said to be “unpolarized” – its waves are polarized randomly in all orientations. A polarizing filter selects for just one direction of polarization. Two polarizing filters working in tandem will let through different amounts of light depending on how they are positioned relative to each other. The fructose solution affects the direction of polarization of the light passing through it – and it even changes the polarizations of different colors of light differently. Thus, the light is polarized by the first filter, enters the fructose solution, changes its polarization at different rates depending on color, and then hits the second filter, which only lets through colors with a suitable polarization. The scattered rays of light travel different distances, creating cool colored patterns!
Cool experiments await you in the MEL Physics subscription!
Safety precautions: Warning! Only under adult supervision.



![Chemical clock
Chemists are so punctual – they’ve even designed a chemical clock!
Hydrogen peroxide is a very active compound and can be both an oxidizer and a reducing agent. In this process, it reduces iodic acid to form molecular iodine and a so-called triiodide complex. This process can be simplified to the following chemical reactions:
HIO₃ + 3H₂O₂ → HI + 3O₂↑ + 3H₂O
5HI + HIO₃ → 3I₂ + 3H₂O
HI + I₂ → H[I₃]
Since oxygen is formed during the first reaction, we can observe the emergence of the gas. The iodine and triiodide complex turn the solution amber. But the solution immediately turns blue, since the starch molecules, which are very long and look like spirals, trap iodine molecules like a fishnet, forming a deep blue iodine-starch complex. Under the action of malonic acid, this complex is destroyed, since it reduces iodine molecules, while the solution itself becomes colorless:
C₃H₄O₄ + I₂ → C₃H₃O₄I + HI
The process repeats every few seconds, and the reaction period depends on the concentrations of the initial solutions. What is this if not a chemical clock?
Fun and safe experiments await you in the MEL Chemistry subscription!
Attention! All experiments are performed by professionals. Do not attempt. Chemical clock](https://i.ytimg.com/vi/ZhBNZV15uy0/mqdefault.jpg)






