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How Biological Clocks Work

Anyone who has traveled has experienced jet lag—that groggy realization that while your day is beginning in Washington, DC, the night you just left in San Francisco is hardly over. Jet lag is an inconvenient reminder that the body is set to a 24-hour clock, known by scientists as circadian rhythms, from the Latin circa dies, 'about one day.' An ...

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HowBiologicalClocksWork
Geology

Our Most Abundant Fossil Fuel

Coal is our most abundant fossil fuel. The US has more coal than the rest of the world has oil. There is still enough coal underground in this country to provide energy for the next 200 to 300 years. ... Continue reading

OurMostAbundantFossilFuel
Biology

Embryo Transfer and Cloning

Scientists use embryo transfer technology to obtain more offspring from a genetically superior animal. For instance, if a farmer owns a cow that produces excellent milk and wants more cows to produce ... Continue reading

EmbryoTransferandCloning
Biology

Diadromous Fish

Diadromous fish are fish that migrate between freshwater and saltwater. The migration patterns differ for each species and have seasonal and lifecycle variations. Only one percent of all fish in the ... Continue reading

DiadromousFish
Biology

What Gives Hair Its Color?

Put a single hair under a microscope, and you'll see granules of black, brown, yellow, or red pigment. What you are seeing are tiny particles of melanin, the same pigment that gives skin its color. ... Continue reading

WhatGivesHairItsColor

Antimatter Discovery

AntimatterDiscoveryIn almost every science fiction movie ever made, you are bound to hear about antimatter –– matter-antimatter propulsion drives, whole galaxies made of antimatter, and so on. Antimatter has been used in science fiction so much that some of us are not even sure if it is real or just imaginary. Here's a hint: antimatter is real and it was discovered a long time ago.

It all started with Paul Dirac, a British physicist, who in 1930 devised the first relativistic theory of the electron. Quantum mechanics had been worked out a couple of years earlier (by Dirac and by Heisenberg, independently), but Dirac’s 1930 theory contained math that exactly modeled electron behavior, both from the quantum mechanical and from the relativistic point of view (electrons moving at close to light speeds). His theory also predicted the existence of an anti-electron; a particle just like an electron, with the same mass but opposite charge (i.e. positive) and opposite magnetic momentum. If you fire such a particle into a magnetic field which is perpendicular to the particle’s trajectory, its path would curve opposite to that of an electron.

In 1932, Carl Anderson, a US physicist, while examining tracks of particles produced by cosmic rays, noticed one track whose curvature was identical to that of an electron but was flipped. Instead of curving to the right, it curved to the left. He named this positively charged electron a positron, the first antimatter particle discovered. Many anti-particles have been discovered since. The anti-proton was discovered in 1955 by E. Segre and his coworkers at the Lawrence Berkeley Laboratory using a high-energy particle accelerator. Most other anti-particles have been discovered at particle accelerators under carefully designed conditions. Many experimental groups have also reported constructing bigger entities than just anti-particles. In fact, whole anti-nuclei have been constructed, for example anti-hydrogen nuclei and an isotope of anti-helium.