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Why Aren't Mice More Like Us?

The sequence of the human genome was published two years ago, and recently, the sequence of the mouse genome was published. Amazingly, 99% of mouse genes have a counterpart in people. So why are they so small and furry, while we are big and hairless and so much smarter? ...

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Mice
Astronomy

Exploring The 'Red Planet'

The planet Mars, sometimes called the 'Red Planet', has been an object of study for many centuries. The distinctive reddish color of the planet led some cultures to associate Mars with bloodshed and ... Continue reading

ExploringTheRedPlanet
Chemistry

Nitrogen Gas and Compounds

Nitrogen is a very interesting element. It is the seventh element of the periodic table, with seven electrons in its atoms. The somewhat unique combination of electronic structure and small atomic ... Continue reading

NitrogenGasandCompounds
Biology

Beluga Whales

Beluga whales inhabit the Arctic and subarctic regions of Russia, Greenland, and North America. Some populations are strongly migratory, moving north in the spring and south in the fall as the ice ... Continue reading

BelugaWhales
Geology

A Great Sunset Takes A Few Clouds

Although the twilight sky can certainly inspire awe even when it is devoid of clouds, the most memorable sunsets tend to be those with at least a few clouds. Clouds catch the last red-orange rays of ... Continue reading

AGreatSunsetTakesAFewClouds

Lightning Striking Again

LightningStrikeWhat's hotter than the surface of the sun, moves with incredible speed, lasts a few seconds and goes out with a bang? If you said lightning, you're right. Lightning strikes cause thousands of forest fires every year and occasionally cause the death of people. Few who have been hit by lightning live to tell the tale. Yet the process that causes lightning is not really any different than what makes static electricity jump when we walk on a carpet and touch a metal doorknob.

Within thunder clouds, air and water vapor, snow and ice crystals are in constant motion. This motion causes the accumulation of positive and negative charges within the particles of snow and ice. As the cloud continues to churn, the areas of charged particles become larger and separate, with the positively-charged particles moving upward, and heavier negatively-charged particles falling downward. This imbalance, in turn, causes the ground below the thunderstorm to become positively charged. Once this process is set in motion, it isn't long before the areas of positive and negative particles attempt to balance each other out. What we call lightning is nothing more than the process of reconciling the positive and negative charges back to a neutral state.

A common misconception is that lightning moves from the sky to the ground. Actually, the process is much more interesting. In the seconds before a lightning strike, negatively-charged air rapidly moves towards the ground. In reaction, positively-charged particles in tall objects on the ground (church steeples, trees, electrical towers) begin to flow upward toward the descending air. When the two connect, a giant rush of visible electrical energy leaps from the ground. This is what we see as lightning. And the thunderclap we hear soon after is the shockwave caused by the sudden heating of the air near the lightning bolt.