Log in Sign up
Back to Discover
⚛️

Rainbow

physical science Maturity 5-7

A rainbow is a bright arc of color.

Ring-billed gull and a rainbow (52910).jpg
Ring-billed gull and a rainbow (52910).jpg
It shows up in the sky. It needs rain and sun to work. The colors look very pretty. We can see them after a storm. Do you like to look for rainbows?

46 words

A rainbow is a bright arc of many colors.

Ring-billed gull and a rainbow (52910).jpg
Ring-billed gull and a rainbow (52910).jpg
It needs sun and water to work. Sunlight hits a drop of water. The light goes inside the drop. It bounces off the back of the drop. Then the light comes back out.
Descartes Rainbow.png
Descartes Rainbow.png
This makes the colors spread out. Red is on the outside of the arc. Violet is on the inside. You can sometimes see two rainbows. The second one is fainter.
Double-alaskan-rainbow.jpg
Double-alaskan-rainbow.jpg
It has the colors in reverse order. Rainbows can even be full circles. This happens if you are high in the sky.

103 words

A rainbow is a bright arc of many colors.

Ring-billed gull and a rainbow (52910).jpg
Ring-billed gull and a rainbow (52910).jpg
It forms when sunlight meets water in the air. This can happen with rain, mist, or even spray from a waterfall. To see one, the sun must be behind you. The water drops must be in front of you.
Descartes Rainbow.png
Descartes Rainbow.png

Light makes a rainbow through a few steps. First, light enters a water drop. This causes refraction, which means the light bends. Next, the light hits the back of the drop. It reflects, or bounces, off the back. Finally, the light bends again as it leaves the drop. This bending spreads the light into different colors. This part is called dispersion. In a primary rainbow, red is on the outer edge. Violet is on the inner side.

Sometimes you can see a second arc. This is a double rainbow.

Double-alaskan-rainbow.jpg
Double-alaskan-rainbow.jpg
The second arc is fainter and sits outside the first one. Its colors are in the reverse order. Most people see an arc because the ground blocks the rest. But if you are in an airplane, you might see a full circle!
Circular rainbow.jpg
Circular rainbow.jpg

190 words

{ "text": "A rainbow is a beautiful arc of many colors in the sky.

Ring-billed gull and a rainbow (52910).jpg
Ring-billed gull and a rainbow (52910).jpg
This bright display happens when sunlight meets water drops in the air. These drops can come from rain, mist, or spray from a waterfall. To see a rainbow, the sun must be behind you. The water must be in front of you. Usually, you see an arc because the ground blocks the bottom. However, you might see a full circle if you are in an airplane.
Circular rainbow.jpg
Circular rainbow.jpg
\n\nLight makes a rainbow through a specific way it works. First, sunlight enters a single water drop. This causes refraction, which means the light bends as it enters. Next, the light hits the back of the drop and reflects, or bounces, off it. Finally, the light bends again as it leaves the drop. This spreading of light into colors is called dispersion. In a primary rainbow, red is on the outer edge. Violet is on the inner side of the arc.
Raindrop optics.jpg
Raindrop optics.jpg
\n\nSometimes you can see a second, fainter arc. This is called a double rainbow.
Double-alaskan-rainbow.jpg
Double-alaskan-rainbow.jpg
The second arc sits about 10 degrees outside the first one. Its colors appear in the reverse order. In this second arc, red is on the lower side. A rainbow can even happen at night. These are called moonbows, or lunar rainbows. Because human eyes are not great at seeing color in low light, moonbows often look white.
Moonbow at lower Yosemite fall.jpg
Moonbow at lower Yosemite fall.jpg
\n\nPeople have studied the colors of rainbows for a long time. Isaac Newton was a famous scientist who studied light. In 1672, he originally divided the colors into

274 words

A rainbow is a colorful circular arc caused by an optical phenomenon. This phenomenon occurs through the refraction, internal reflection, and dispersion of light within water droplets.

Ring-billed gull and a rainbow (52910).jpg
Ring-billed gull and a rainbow (52910).jpg
While we often think of rain, rainbows can also be formed by mist, spray, or airborne dew. To see one, the sunlight must shine from behind the observer at a low altitude angle. The rainbow appears in the part of the sky directly opposite the sun. This center point is known as the anti-solar point.
Raindrop optics.jpg
Raindrop optics.jpg

The mechanism of a rainbow involves several precise steps within a single water droplet. First, sunlight enters the droplet and undergoes refraction, which is the bending of light as it moves from air into water. The light then hits the back of the droplet and undergoes internal reflection. Finally, the light refracts a second time as it exits the droplet. This process causes dispersion, where the different wavelengths of light bend at different angles.

Descartes Rainbow.png
Descartes Rainbow.png
Because of this, blue light is refracted at a greater angle than red light. However, due to the reflection, blue emerges at a smaller angle to the original light ray. This results in red appearing on the outer edge and violet on the inner side of a primary rainbow.

There are different types of rainbows that an observer might see. The most common is the primary rainbow, which shows red on the outside and violet on the inside. Sometimes, a second, fainter arc appears about 10° outside the primary arc. This is called a double rainbow.

Double-alaskan-rainbow.jpg
Double-alaskan-rainbow.jpg
In a double rainbow, the colors are perceived in reverse order, with red on the lower side. This occurs because the center of the second arc is the sun, not the anti-solar point. Another rare type is the moonbow, or lunar rainbow. These occur on strongly moonlit nights. Because human vision is poor in low light, moonbows often appear white to our eyes.
Moonbow at lower Yosemite fall.jpg
Moonbow at lower Yosemite fall.jpg

Scientists have long studied the components of these colorful displays. Isaac Newton was a key figure in this history. In 1672, Newton originally divided the spectrum into five main colors: red, yellow, green, blue, and violet. He later added orange and indigo to create a sevenfold sequence.

Kamāl al-Dīn al-Fārisī - Primary and secondary rainbow construction, around 1300.jpg
Kamāl al-Dīn al-Fārisī - Primary and secondary rainbow construction, around 1300.jpg
He did this by analogy to the number of notes in a musical scale. Modern interpretations often divide the rainbow into red, orange, yellow, green, cyan, blue, and violet. The exact number of colors is somewhat arbitrary because the spectrum is a continuous transition.

The physics of the rainbow involves specific mathematical measurements. The most intense light of a primary rainbow is returned at an angle of approximately 42°. This angle depends on the refractive index of the liquid. For example, seawater has a higher refractive index than rainwater. This means a rainbow formed in sea spray will have a smaller radius than a true rainbow.

First order rainbows from water droplets and a sugar solution droplets.jpg
First order rainbows from water droplets and a sugar solution droplets.jpg
The light of a primary rainbow is also 96% polarized tangential to the arc. The light in a secondary rainbow is 90% polarized.

Rainbows can take different shapes depending on the observer's position. Most people see only an arc because the ground blocks the rest of the circle. However, if you are in an airplane, you may see a full circle.

Circular rainbow.jpg
Circular rainbow.jpg
You might also see a full circle near waterfalls or fountains. The sky inside a primary rainbow actually appears brighter than the sky outside. This is because each spherical raindrop scatters light over an entire circular disc. Red light is scattered over a larger angle than blue light, which creates the visible edge of the bow.

Understanding rainbows connects to broader ideas in physics and linguistics. The way we name colors may even change how we see them. Research suggests that the number of distinct colors observed can depend on the language a person uses. This is related to the concept of linguistic relativity. Furthermore, rainbows involve light frequencies beyond what humans can see. There are bands in the near infrared and ultraviolet regions. While cameras using black and white film can sometimes see the UV band, these remain invisible to the human eye.

713 words
🖼️ Images & Media (17)
File:Double-alaskan-rainbow.jpg
Double-alaskan-rainbow.jpg
File:Ring-billed gull and a rainbow (52910).jpg
Ring-billed gull and a rainbow (52910).jpg
File:Raindrop optics.jpg
Raindrop optics.jpg
File:Regenbogen über dem Lipno-Stausee.JPG
Regenbogen über dem Lipno-Stausee.JPG
File:Alexander’s band will 1.jpg
Alexander’s band will 1.jpg
File:Circular rainbow.jpg
Circular rainbow.jpg
File:Supernumerary-rainbows-jb.jpg
Supernumerary-rainbows-jb.jpg
File:ReflectionRainbow.jpg
ReflectionRainbow.jpg
File:Monochrome rainbow.jpg
Monochrome rainbow.jpg
File:Moonbow at lower Yosemite fall.jpg
Moonbow at lower Yosemite fall.jpg
File:Fogbow spectre and glory filtered.jpg
Fogbow spectre and glory filtered.jpg
File:Sleetbow.jpeg
Sleetbow.jpeg

+ 5 more

Up Next
⚛️
Glory (optical phenomenon)
Physical Science
More to explore

What is Nepedia?

A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.