ScienceIQ.com

How Can A Bullet-proof Vest Stop A Bullet?

Here's an experiment: take the small coil springs from a dozen or so retractable pens and roll them together in a heap until they are thoroughly tangled and entwined. Now try to pull them apart from end to end. You should find them extremely difficult to pull apart this way, as anyone who has ever tried to untangle a 'Slinky' toy will know. ...

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BulletproofVestStopABullet
Science

Inventor: George Washington Carver

George Washington Carver, born a slave in 1864 (approximately), contributed significantly to agricultural research. Although he was orphaned as an infant, endured hardship in pursuit of his education, ... Continue reading

GeorgeWashingtonCarver
Biology

The Red-Cockaded Woodpecker

In the mid-l800s, naturalist John Audubon reported that the red-cockaded woodpecker was found abundantly in the pine forests of the southeastern United States. Historically, this woodpecker's range ... Continue reading

TheRedCockadedWoodpecker
Medicine

How a Horse Can Save Your Life?

Most people who have been vaccinated with the smallpox vaccine never really question what exactly was injected into their body. If they did, they might be surprised, and maybe thank a horse or two. ... Continue reading

HorseLife
Geology

What Are The Differences Between Global Warming, Greenhouse Effect, Greenhouse Warming, And Climate Change?

The term Global Warming refers to the observation that the atmosphere near the Earth's surface is warming, without any implications for the cause or magnitude. This warming is one of many kinds of ... Continue reading

GreenhouseEffectClimate Change

You, Graphite and Diamonds

GraphiteDiamondsLiving things, including you and me, and diamonds, are made of the same substance: the element carbon (C). Carbon atoms in our bodies are bound to other atoms, such as hydrogen and oxygen, in organic molecules, while those in a diamond are bound to other carbon atoms to form a pure crystalline structure. Another form of pure carbon is graphite. Even though we are carbon relatives with graphite and diamonds, diamonds are by far the strongest.

In a diamond, all four outer electrons of the carbon atom are covalently bonded to other carbon atoms to form an extremely strong three-dimensional crystalline structure. In contrast, only three of the four outer electrons of the carbon atom are bonded to other carbon atoms in graphite; forming sheets of carbon atoms rather than a 3D crystal. Hence graphite is very slippery (carbon sheets slipping on top of each other) and breakable, while diamonds are the hardest material on Earth.

All diamonds were formed between 1 and 3 billion years ago by a combination of extremely high temperatures and pressures, about 100 miles (160 km) deep inside the Earth. At the same temperature, graphite only needs a third or a quarter of that pressure to form. As a result, graphite forms much closer to the Earth's surface and is easily mined. So how do we extract diamonds? Do we dig mines 100 miles deep? Fortunately, we don't have to. Diamonds get carried up to the surface by volcanic eruptions while embedded into volcanic rock known as kimberlite. Volcanic eruptions travel upwards at speeds anywhere between 10 and 100 mph (16 to 160 km/h). If they traveled much slower, diamonds would convert to graphite on the way up. We would have never known about diamonds, and engagements would have had a whole different feel to them … a slippery and black one.