Supporting Image
Mar 18, 2025 0    
Mood rings
Polymers at Play: Color Me Crystallized!
by Sara Callori, Zoryanna Alvarez, Andres Munoz
Co-author: Taylor Billington

When we look at any object, the wavelength of light reflected by the material determines the color we see. So how is this ring able to change colors depending on its wearer’s mood (Fig. 1)? The magic lies in the shapeshifting behavior of long molecular chains known as polymers!

The polymers in mood rings belong to a special class of materials called liquid crystals—an “in-between” state of matter with some liquid-like and some solid-like properties. More specifically, the long molecules in a liquid crystal polymer can move and jumble around like the molecules in a liquid do, but they can also stack into orderly layers like the atoms in a solid crystal (Fig. 2).

As in other crystals, the wavelength reflected by a liquid crystal depends on the spacing of these layers—a process called crystal diffraction, shown in Fig. 3. Unlike other crystals, however, the spacing of layers in a liquid crystal can change as the molecules move. The specific type of liquid crystal is mood rings is called a thermochromic liquid crystal, or TLC. “Thermo” means heat, and “chromo” means color, so it won’t surprise you to learn that TLCs change color in response to temperature. Knowing how temperature affects the structure of liquid crystal polymers—in particular the space between crystal layers—is the key to understanding how mood rings change color.

You might expect liquid crystals to behave more like liquids at warmer temperatures and more like solids at cooler temperatures . . . and you’d be on to something there! But the reality is even weirder and more wonderful.

In the cholesteric phase (so named because some forms of cholesterol exhibit this behavior!), liquid crystal molecules are helix-shaped, like strands of DNA or the threads of a screw. What do you notice about the two screws shown in Fig. 4? They differ in a property called pitch, which you can think of as the “steepness” of the helix, or the vertical distance it takes to complete one full turn. The molecules in a cholesteric liquid crystal also exhibit this property, but they’re more like a spring or Slinky than a screw, since their pitch can change under different conditions.

Generally, the helix is more loosely held together at higher temperatures—imagine stretching a Slinky—which increases the pitch. At lower temperatures, the helix contracts and the pitch decreases. As the pitch of individual molecules in a liquid crystal increases or decreases, the layers move farther apart or closer together, respectively (Fig. 5), producing the color change. The whole process is temperature-dependent, with a bit of a catch—the precise relationship between color and temperature depends on the exact composition of the liquid crystal, since impurities in the crystal can also affect the pitch.

Now that you know how it works, do you think a mood ring can really detect your mood? Maybe. The TLC in a mood ring is sensitive to your skin’s temperature, so if you’re embarrassed and feel yourself getting warm, it won’t just be your cheeks that change color! Increased blood flow to your skin will warm the liquid crystal in the mood ring, and it will change color, too. Then again, the same color change could mean you’re flushed with pride or pleasure, and lots of variables besides mood can also affect your skin’s temperature. So if a friend’s mood ring is black when you’re around, don’t take it personally—they’re probably just cold.

Fig. 1 (Click to enlarge).
Fig. 1 (Click to enlarge). Mood rings seem to change color according to the wearer's mood. But how does it work? Polymers are the key! (source)

Fig. 2 (Click to enlarge).
Fig. 2 (Click to enlarge). In a liquid crystal, molecules can move and jumble around like the molecules in a liquid, but they also stack into orderly layers like the atoms in a solid crystal. (source)

Fig. 3 (Click to enlarge).
Fig. 3 (Click to enlarge). In a liquid crystal, the distance between molecular layers determines the wavelength of light the material reflects. The spacing of layers can vary with temperature, however. When the layers are closer together (left), the material appears blue; when the layers are farther apart (right), it appears red.

Fig. 4 (Click to enlarge).
Fig. 4 (Click to enlarge). These two screws differ in a property called pitch—the vertical distance it takes to complete one full turn of the helix. When the pitch is lower (left), the helix is less steep and the threads are more closely packed. When the pitch is higher (right), the helix is steeper with more space between the threads.

Fig. 5 (Click to enlarge).
Fig. 5 (Click to enlarge). This schematic shows how the pitch of molecules in a cholesteric liquid crystal affects the spacing of the layers. On the left, we see a "zoomed-in" view of a single molecule; on the right, a "zoomed-out" view of the liquid crystal layers, each containing many molecules. Notice how the distance between layers grows and shrinks as the pitch of the individual molecules varies!

TAGS: #liquid crystals    #polymers    
 
SHARE THIS POST:

Related Posts

08/2025
Supporting Image
Supporting Image
Silly Putty, serious science

There is some serious science behind Silly Putty! This classic toy gets its unique properties from materials you can find around your house or at the grocery store. Click to learn how you can make your own Silly Putty at home and try some fun experiments to investigate its properties!

0 0    
03/2025
Supporting Image
Supporting Image
Mood rings
by Sara Callori, Zoryanna Alvarez, Andres Munoz

How can this ring change color depending on its wearer’s mood? The short answer is polymers—long molecular chains that make up everyday objects like garbage bags and toothbrushes, along with some of your favorite toys! Click to learn how mood rings rely on the shapeshifting behavior of polymers to predict your mood. (Maybe.)

0 0    

More Funsize Fundamentals

03/2025
Supporting Image
Supporting Image
Mood rings
by Sara Callori, Zoryanna Alvarez, Andres Munoz

How can this ring change color depending on its wearer’s mood? The short answer is polymers—long molecular chains that make up everyday objects like garbage bags and toothbrushes, along with some of your favorite toys! Click to learn how mood rings rely on the shapeshifting behavior of polymers to predict your mood. (Maybe.)

0 0    
11/2024
Kids, like many of us, love playing with non-Newtonian fluids. Photo by tookapic/Pixabay.
Kids, like many of us, love playing with non-Newtonian fluids. Photo by tookapic/Pixabay.
What is a Non-Newtonian Fluid?

Why do so many fluids behave counterintuitively? Many substances in our lives – like oobleck, slime, or Silly Putty – don’t quite behave the way we expect a fluid to, despite some fluid-like properties. These substances fall into a special category: non-Newtonian fluids. Scientifically, this term is a bit of a catch-all for any substances that have a complicated relationship between their apparent viscosity and the force applied to them.

0 0    
07/2021
Supporting Image
Supporting Image
Honey pours slower than water, but why?

The term may be unfamiliar, but we all have a sense for viscosity. We often think of it colloquially as the “thickness” of a fluid. It’s the property that makes honey pour so differently from water. Fluid dynamicists – scientists and engineers who study how liquids and gases move – tend to think of viscosity in terms of a fluid’s resistance to flowing or changing its shape.

0 0    
07/2021
Neutrons can fly undeterred through lead, but they scatter strongly from hydrogen and oxygen. Thus, the lead container looks transparent to neutrons, while the flowers don
Neutrons can fly undeterred through lead, but they scatter strongly from hydrogen and oxygen. Thus, the lead container looks transparent to neutrons, while the flowers don
Neutron scattering
by Sara Callori, Shireen Adenwalla

When we examine the world around us, we observe its structure, or where things are, as well as its dynamics, or how things move and interact. Likewise, when we investigate a new material, we want to understand its structure and dynamics—where the atoms and molecules are, and what they are doing. To do this, we need measurement techniques that can tell us what is happening at a very small scale. Read on to find out how neutrons come to our rescue!

0 0    
04/2021
Supporting Image
Supporting Image
Crystal diffraction

Have you ever wondered why some materials are hard and others soft, some conduct heat or electricity easily while others don't, some are transparent to light while others are opaque . . . and on and on and on? The material universe is vast and diverse, and while a material's properties depend in part on the elements it is made from, its structure—how it is built from its constituent atoms—can also have wide-ranging effects on how it looks, feels, and behaves. Diffraction is a method that allows us to "see" the atomic structure of materials. Read on to find out how it works!

0 0    
11/2020
Researchers at IBM moved around iron atoms on a copper surface to spell out the Kanji characters for the word atom. Image courtesy of IBM.
Researchers at IBM moved around iron atoms on a copper surface to spell out the Kanji characters for the word atom. Image courtesy of IBM.
Using STM to take pictures of atoms

You’re lining up your phone to take a picture of your dog. Light comes down from the sun, bounces off the dog, and into your camera lens, allowing you to take the photo. Your eyes work similarly, taking in all the light particles, known as photons, that are scattering off of objects in the world. Most things “see” by detecting these bouncing photons, which is why both you and your phone have a hard time seeing anything at all when the lights are off.

0 0    

WRITE COMMENT

Go to Top