ScienceIQ.com

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

The Sun’s Corona

The White-Light Corona - The Corona is the Sun's outer atmosphere. It is visible during total eclipses of the Sun as a pearly white crown surrounding the Sun. The corona displays a variety of features ... Continue reading

TheSunCorona
Biology

New Ideas About An Old Puzzle

There's a familiar way of talking about language as a 'tool,' but of course that's just a metaphor. Literal tools made of rock can last for millennia as evidence of the skills of early humans. Not so ... Continue reading

NewIdeasAboutAnOldPuzzle
Geology

Haleakala Crater

Modern geology indicates that the Hawaiian Islands are situated near the middle of the Pacific Plate, one of a dozen thin, rigid structures covering our planet like the cracked shell of an egg. Though ... Continue reading

HaleakalaCrater
Biology

What Makes Those Jumping Beans Jump?

Mexican jumping beans intrigue us because we don't understand how this inanimate object could actually jump, even though we see it with our own eyes. It is the question everyone wonders when they see ... Continue reading

WhatMakesThoseJumpingBeansJump

Let Go, Gecko!

GeckosGeckos are small, insect-eating, noisy lizards that live in many parts of the world. While geckos have become common pets, the way that they manage to stick to smooth ceilings has remained a mystery. Scientists initially expected to find that geckos have tiny suction cups on their feet, or a sticky glue secreted by their toes. Both explanations were ruled out after careful study.

So how do geckos go anywhere they want? The answer is van der Waals forces! Van der Waals forces are caused by charge separation. When an electron on a molecule or an atom moves slightly away from its equilibrium position, it leaves a tiny region with a net positive charge, and another region with a net negative charge. These charged areas move electrons on nearby atoms or molecules to create an opposing charge separation. When this happens, the molecules stick together (positive attracts negative, and vice versa). As you might have guessed, van der Waals forces are dynamic; the regions of charge are always shifting.

When professor Robert Full and his team looked closely at a gecko's toes, they found about two million densely packed fine hairs called setae. The end of each seta is subdivided into hundreds to thousands of structures called spatulae. The combined adhesive force of all of the tiny hairs is ten times greater than the weight of the gecko. If human hands had the same setae layer, each would be able to support 90 lbs through adhesion. Multiply that by four, and a 360-pound body could stick to the ceiling! Geckos walk by rolling these hairs, or spatulae, onto the surface, and then peeling them off again just like tape. Scientists are now developing a new type of tape, based on the gecko's sticking ability.