ScienceIQ.com

Voyager Phone Home

After historic visits to Jupiter and Saturn, Voyager 1 is now on course to be the first human-made object to leave our solar system. In space for more than 25 years, it has already traveled farther than any other spacecraft. It is not clear when Voyager 1 will reach the heliopause boundary, where the influence of our Sun ends. The boundary is ...

Continue reading...

Voyager
Chemistry

Catalysts

Chemical reactions are interactions between atoms and molecules that result in a change in their relative arrangements and interconnections. The reaction affects only individual atoms and molecules, ... Continue reading

Catalysts
Medicine

My Aching Back

The back is an intricate structure of bones, muscles, and other tissues that form the posterior part of the body’s trunk, from the neck to the pelvis. The centerpiece is the spinal column, which not ... Continue reading

MyAchingBack
Biology

Billions and Billions

Nobody really knows how many brain cells anybody has, but typical estimates are around 200 billion. You've heard the late Carl Sagan talk about 'billions and billions of stars' in the universe. Think ... Continue reading

BillionsBillions
Astronomy

Will the Sun Shine Forever?

The Sun is a huge nuclear furnace. It operates by converting hydrogen into helium. In this process, which is called nuclear fusion, it loses mass and produces energy according to Einstein's famous ... Continue reading

SunLifetime

The Color of The Sunset

SunsetColorColor in the form of pigment does not exist in the atmosphere. Instead, the color we see in the sky results from the scattering, refraction, and diffraction of sunlight by particles in the atmosphere, especially small particles such as air molecules. If there were no particles in the atmosphere, then sunlight would travel straight down to the Earth and the sky would be black.

Specifically, sunlight travels thought the solar system in straight, invisible waves (unless something sends it off in a different direction) and consists of a mixture of all colors in the visible portion of the electromagnetic spectrum. Furthermore, each color in this spectrum is associated with a different wavelength: red and orange have the longest wavelengths--while blue, indigo, and violet have the shortest (i.e., 0.47 um for violet to 0.64 um for red). Thus, when sunlight first enters the Earth's atmosphere, air molecules are typically the first to scatter the colors in sunlight--one by one, beginning at the violet end of the spectrum.

Specifically, when the sun is high in the sky (and there is a relatively short pathway to the Earth), violet, indigo, blue, and a little green are scattered, producing a blue sky. However, when the sun is low in the sky (i.e., sunrise or sunset), its path through the atmosphere is longer and yellow, orange, and red colors are scattered near the ground. Thus, as a general rule, the farther light travels through the atmosphere, the redder it becomes. The longer trip means more and more light at the blue end of the spectrum is scattered. This leaves red, yellow, and orange light to reach our eyes or reflect off clouds. This notion is perhaps best illustrated by example: a beam of sunlight that at a given moment produces a red sunset over the Appalachians is at the same time contributing to the deep blue of a late afternoon sky over the Rockies.