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The Journey of the Monarchs

The life of Monarch butterflies is an amazing one. They develop as caterpillars from the roughly 400 eggs each mother lays on the underside of milkweed plant leaves. Then they spend their brief lives eating and gaining weight, sometimes reaching up to 2700 times their original weight. The caterpillars then pupate and transform into beautiful ...

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MonarchButterflies
Engineering

X-Ray Astronomy vs. Medical X-Rays

It's natural to associate the X-rays from cosmic objects with an X-ray from the doctor's office, but the comparison is a bit tricky. A doctor's X-ray machine consists of two parts: an X-ray source at ... Continue reading

XRayAstronomyvsMedicalXRays
Physics

Carbon Dating From The Skies

Determining the age of relatively recent fossils, those of plants and animals that lived tens of thousands of years ago, is not a guessing game but an exact science. By using carbon dating we can ... Continue reading

CarbonDatingFromTheSkies
Astronomy

The Antennae

NASA's Chandra X-ray Observatory has discovered rich deposits of neon, magnesium, and silicon in a pair of colliding galaxies known as The Antennae. The deposits are located in vast clouds of hot gas. ... Continue reading

TheAntennae
Biology

Why Are Zebra Mussels Successful As Invaders?

The zebra mussel (Dreissena polymorpha) is a small, non-native mussel originally found in Russia. In 1988, this animal was transported to North America in the ballast water of a transatlantic ... Continue reading

ZebraMusselsInvaders

Neutrinos to the Rescue

NeutrinosHave you ever wondered what the most abundant particle in the universe is after photons of light? The answer is: Neutrinos. These tiny, neutral and almost mass-less particles that move at almost the speed of light hardly ever interact with anything in the universe. In fact about ten thousand trillion neutrinos will pass through your body by the time you are finished reading this.

The existence of neutrinos was predicted by Wolfgang Pauli in 1930. After observing the beta decay, a process where a neutron (which was not yet discovered at the time) from atom's nucleus decays into a proton and an electron, it was noticed that the energy just did not add up. Namely, there was a missing amount of energy that was a threat to the well-established law of conservation of energy. Pauli then postulated that there must be a new particle which was not seen that would carry this missing difference in energy. He named it the 'neutron'. This name did not last too long since in 1932 James Chadwick actually discovered the neutron. Fermi then renamed it a neutrino, which in Italian means: little neutral one. It was only in 1956 that Clyde Cowan and Fredrick Reines actually detected neutrinos from a nuclear power plant for the first time.

Most of the neutrinos in the universe were created during the first few seconds after the Big Bang. Thanks to their weak interaction with matter, most of those neutrinos are still around. Neutrinos are also created in nuclear power plants and in our Sun and other stars where, in the process of fusion, four protons and two electrons get fused into an atom of Helium and in the process create two neutrinos. We still know very little about these elusive particles, namely that their mass is very small (smaller than that of the electron), but we don't know exactly what that mass is. We also believe that they travel at or close to the speed of light, but again we are not sure what that speed is. Further research into neutrinos will not only answer these questions but will also allow us to peek into the early universe, to learn about the formations of stars and explosions of supernovas. The message is in the neutrinos.