This is a tiny part of gas.
Helium-3 is a tiny part of gas.
Helium-3 is a light and stable gas.
This gas acts in a special way. When it gets very cold, it becomes a superfluid. A superfluid is a liquid that flows without stopping. This happens at a very low temperature. It is 2.491 millikelvins. That is much colder than any place on Earth.
We can find helium-3 in a few places. It is in Earth's atmosphere and in natural gas. It also comes from rocks. Some of it is trapped deep inside the Earth. There is also much more of it on the Moon. The solar wind leaves it in the Moon's dust.
People think helium-3 could help us make power. We could use it for nuclear fusion. Fusion is a way to make energy by joining atoms. This kind of fusion might be safer. It would not let out dangerous radiation. This makes it a very exciting thing to study.
Helium-3 is a very light and stable gas.
This gas has some very strange ways of working. It can become a superfluid when it gets extremely cold. A superfluid is a liquid that can flow without stopping. This happens at a temperature of 2.491 millikelvins. That is much colder than anything you would find in space.
People have been studying this gas for a long time. A scientist named Mark Oliphant first thought about it in 1934. He was working at the Cavendish Laboratory in Cambridge. Later, in 1939, Luis Alvarez and Robert Cornog finally isolated it. This means they were the first to separate it out. Since then, many people have won awards for studying it. David Lee, Douglas Osheroff, and Robert Coleman Richardson won a Nobel Prize in 1996. They found the special ways the gas flows when it is cold.
We can find helium-3 in several different places. Some of it is trapped deep inside the Earth's mantle. It also escapes from the Earth's crust into our atmosphere. You can find small amounts in natural gas wells, too.
Understanding helium-3 helps us understand the whole solar system. It is a primordial substance, which means it has been around since the beginning. It is part of the original mix of gases from the start of our sun. While it is rare on Earth, it is more common on gas giants. Even on the Moon, it is found in the regolith, which is Moon soil. Learning about this tiny atom helps us look toward the future of energy. It connects the tiny world of atoms to the huge world of space.
Helium-3 is a light and stable isotope of helium. An isotope is a version of an element that has a different number of particles in its center.
The physical behavior of helium-3 is driven by its tiny mass. It has an atomic mass of 3.016 Da, which is lower than helium-4 at 4.0026 Da. Because the atoms are so light, their properties are mostly determined by their zero-point energy. This energy allows helium-3 atoms to overcome certain interactions with less thermal energy than helium-4. This leads to very different boiling points. Pure helium-3 gas boils at 3.19 K, while helium-4 boils at 4.23 K. At its boiling point, helium-3 is also much less dense, at only 59 g/L compared to 125 g/L for helium-4.
One of the most fascinating things about helium-3 is its ability to become a superfluid. A superfluid is a liquid that can flow without any friction or resistance. This happens at an extremely low temperature of 2.491 millikelvins.
Scientists have discovered that helium-3 actually has two distinct superfluid phases. These are known as the A-phase and the B-phase. The B-phase occurs at lower temperatures and lower pressures. The A-phase occurs at higher temperatures and higher pressures and is stabilized by magnetic fields.
The history of helium-3 began with theoretical ideas and ended with Nobel Prizes. In 1934, the Australian physicist Mark Oliphant proposed its existence while at the Cavendish Laboratory. He was studying what happens when fast deuterons collide. In 1939, Luis Alvarez and Robert Cornog successfully isolated the isotope for the first time. Later, in the 1970s, David Lee, Douglas Osheroff, and Robert Coleman Richardson discovered the superfluid phase transitions. Their work earned them the Nobel Prize in Physics in 1996. In 2003, Alexei Abrikosov, Vitaly Ginzburg, and Tony Leggett won a Nobel Prize for refining the understanding of these phases.
Helium-3 is found in several different locations across our planet and beyond. It is a primordial substance, meaning it was trapped in Earth's mantle during the planet's formation. It can escape through hotspot volcanoes like those in Hawaii or through mid-ocean ridges. Some is also produced when cosmic rays hit lithium or through the decay of tritium.
Looking toward the future, scientists are interested in helium-3 for nuclear fusion. Fusion is the process of joining atoms together to release massive amounts of energy.
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