ScienceIQ.com

Surprise! Lightning Has Big Effect On Atmospheric Chemistry

Scientists were surprised to learn summer lightning over the U.S. significantly increases regional ozone and other gases that affect air chemistry 3 to 8 miles above Earth's surface.The amounts of ozone and nitrogen oxides created by lightning surpass those generated by human activities in that level of the atmosphere. Typically over the U.S., ...

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AtmosphericChemistry
Geology

There's Oil Down There

Ever wonder what oil looks like underground, down deep, hundreds or thousands of feet below the surface, buried under millions of tons of rock and dirt? If you could look down an oil well and see oil ... Continue reading

TheresOilDownThere
Biology

Are Mushrooms Plants?

Mushrooms are classified under the Kingdom Fungi, whereas plants are in the Kingdom Plantae. So, how are mushrooms so different from plants? They both grow in the soil and are not animals, but that is ... Continue reading

AreMushroomsPlants
Geology

Silent Earthquakes

Try this demonstration of earthquake movement. Shape modeling clay into two blocks or get two firm sponge blocks. Press the sides of the blocks together while trying to slide them slowly past each ... Continue reading

SilentEarthquakes
Astronomy

Mission: Gather Comet Dust; Return To Earth

One of the most imaginative NASA missions of recent years is the Stardust mission. Its main purpose: to gather dust and particles from comet P/Wild 2 and return them to Earth for study. Think about ... Continue reading

CometDust

How Lasers Work

HowLasersWorkLight is a fascinating thing. Or things, as the case may be. Electromagnetic energy that our eyes have developed to see, light has the same behavior and properties as all other electromagnetic radiation. But there is a dilemma that is most noticeable with light, arising from the fact that it is observed to behave at times as though it is composed of small, discrete particles, while at other times it behaves as though composed of continuous waves. This is known as the 'wave-particle duality' of light. In everyday applications this duality is unimportant, and for the most part we don't care whether we are bathed in waves or particles as long as the lights come on when we flick the switch or the sun shines when the storm clouds break apart.

But the wave-particle duality has great importance in more technical and scientific applications. In certain materials. electrons can be stimulated to switch energy levels within atoms and molecules. When those electrons go back into their original energy levels, they each give up a single 'particle' of energy called a 'photon', whose value is exactly equal to the difference in energy between the two electronic levels. When the material is made to lase in this way, the released photons are manipulated in such a way that they come out of the material as coherent waves of light. That is, the light waves all have the same wavelength, all have the same amplitude, and all the waves are in phase and traveling in parallel with each other.

Light from a non-coherent source radiates outward from that source in all directions. By contrast, a beam of laser light doesn't diverge but maintains a constant size. At least, that's the theory. In practice, laser beams do diverge in a manner that directly reflects the quality with which the laser device has been constructed. The better the laser device, the narrower, more coherent, and less divergent is the beam of laser light that it emits.