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Our world is made of elements and combinations of elements called compounds. An element is a pure substance made of atoms that are all of the same type. At present, 116 elements are known, and only about 90 of these occur naturally.

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Neon sign

Neon – element number 10 on the periodic table – is an inert gas discovered by Sir William Ramsay in 1898. It is used in making neon advertising signs.

Elements and the ‘Big Bang’ theory

During the formation of the universe some 14 billion years ago in the so-called ‘Big Bang’, only the lightest elements were formed – hydrogen and helium along with trace amounts of lithium and beryllium. As the cloud of cosmic dust and gases from the Big Bang cooled, stars formed, and these then grouped together to form galaxies.

The other 86 elements found in nature were created in nuclear reactions in these stars and in huge stellar explosions known as supernovae.


Universal element formation

Elements are formed deep within the cores of certain types of star. Find out more in this interactive.

Elements and our Sun

For most of their lives, stars fuse elemental hydrogen into helium in their cores. Two atoms of hydrogen are combined in a series of steps to create helium-4. These reactions account for 85% of the Sun’s energy. The remaining 15% comes from reactions that produce the elements beryllium and lithium.

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The Sun

At this stage of our Sun’s life cycle, hydrogen atoms are fused to form helium atoms. This nuclear reaction produces very large amounts of energy.

The energy from these nuclear reactions is emitted in various forms of radiation such as ultraviolet light, X-rays, visible light, infrared rays, microwaves and radio waves. In addition, energised particles such as neutrinos and protons are released, and it is these that make up the solar wind.

Earth is in the path of this energy stream, which warms the planet, drives weather and provides energy for life. The Earth’s atmosphere is able to screen out most of the harmful radiation, and the Earth’s magnetic field can deflect the harmful effects of the solar wind.

Dying stars

When a star’s core runs out of hydrogen, the star begins to die out. The dying star expands into a red giant, and this now begins to manufacture carbon atoms by fusing helium atoms.

More massive stars begin a further series of nuclear burning or reaction stages. The elements formed in these stages range from oxygen through to iron.

During a supernova, the star releases very large amounts of energy as well as neutrons, which allows elements heavier than iron, such as uranium and gold, to be produced. In the supernova explosion, all of these elements are expelled out into space.

What is the Big Bang theory?

Dr David Krofcheck is a particle physicist who believes that the Big Bang is how matter came about.

Our world is literally made up of elements formed deep within the cores of stars now long dead. As Britain’s Astronomer Royal Sir Martin Rees said, “We are literally the ashes of long dead stars.” When you buy a party balloon that floats in air, it is filled with helium gas – most of which was created when the universe was only 3 minutes old!

Examples of element making (nucleogenesis) in helium burning reactions:

  • 3 helium atoms fusing to give a carbon atom: 3 @ 4He → 12C

  • carbon atom + helium atom fusing to give an oxygen atom: 12C + 4He → 16O

  • oxygen atom + helium atom fusing to give a neon atom: 16O + 4He → 20Ne

  • neon atom + helium atom fusing to give a magnesium atom: 20Ne + 4He → 24Mg

Man-made elements

Only 90 of the 116 known elements occur naturally, so where have the other 26 come from?

The answer is to be found in the development of nuclear power plants and machines known as particle accelerators:

  • Scientists discovered that, by allowing fast neutrons to collide with the common isotope of uranium known as U-238 in a nuclear reactor, the ‘new’ element plutonium was made.

  • By smashing atoms together in machines known as particle accelerators, it was discovered that new elements could be made. For example, bombarding atoms of the element curium with atoms of neon made element 106 – seaborgium.



Curiouser and curiouser.

HZB- spin- quantum- state- liquid-material- nbsp- interactions- matter, -materials,- understanding, - magnetic, anti-http://www.woobleweb.com/

Back in April, the physics world freaked out when scientists confirmed that they'd made the first direct observation of a brand-new state of matter - known as quantum spin liquid - for the first time.
But now a team of physicists has just announced that they've observed quantum spin liquid state again... and this time in a material where it should be impossible.
The discovery could change our understanding of how to make quantum computing work.
"We have proved empirically that interesting quantum states like spin liquids can also occur in considerably more complex crystals with different constellations of magnetic interactions," said lead researcher Christian Balz, from the Helmholtz-Zentrum Berlin für Materialien und Energie (HZB) in Germany.
"This could be important for the advancement of quantum computers in the future because spin liquids are one of the possible building blocks for carrying the smallest unit of quantum information, known as a qubit," added one of the senior researchers Bella Lake.
Let's back up a second, because all this isn't as confusing as it sounds.
Spin in the quantum world doesn't actually mean an electron is physically spinning. It refers to a type of intrinsic angular momentum that simply describes how an electron is behaving. In quantum computing we often simplify this by saying the spin state is down, up, or in superposition (both at the same time).
Quantum spin liquid is a state of matter that, very simply, occurs when the spin of electrons continue to fluctuate in a fluid manner even at very low temperatures, when they should be frozen in place.
It's like atoms inside regular materials. When they're in a fluid state, they're moving freely. But when temperatures drop, they'll freeze in place in a solid arrangement. That should happen with spin orientation in magnetic materials, but in quantum spin liquid state, it doesn't.
Even though it was predicted in 1973, the new state of matter was only observed for the first time this year, in a two-dimensional, graphene-like material.
That discovery made a lot of sense, because the material fit our understanding of how spin liquid state arises.
Basically, the criteria is that a material has to have has anti-ferromagnetic - or antiparallel - interactions, which, as the name suggests, is the opposite to ferromagnetic interactions in materials such as iron and nickel.
It means that if one electron has a 'down' spin, the one next to it has to have an 'up' spin, and so on.  
Anti-ferromagnetic materials on their own don't necessarily enter quantum spin liquid state, unless they also happen to have a triangular atomic arrangement, which makes this alignment impossible.
So, just imagine three atoms at the corner of a triangle - they're never all going to be in parallel alignments because as soon as one changes to match the one to its right, the one on its left will have to change, and so on and so on. They'll keep flipping their alignment even at absolute zero temperature - hence, quantum spin liquid state.
But the new research suggests that our criteria isn't quite right, because the German team were able to observe the new state of matter occurring in a material that doesn't fit that profile.
The material in question is a monocrystal of calcium chromium oxide (Ca10Cr7O28).
Calcium-chromium oxide is made up of what are known as Kagomé lattices - named after the pattern of triangles and hexagons woven in Japanese baskets.
Basically that means the material has a complex mix of anti-ferromagnetic interactions, but also much stronger ferromagnetic interactions, which, according to conventional understanding, should prevent quantum spin liquid behaviour.
But through a range of scattering and spectrometry experiments in Germany, France, England, Switzerland, and the US, the team was able to show that this wasn't the case - quantum spin liquid state was happening even at temperatures as low as 20 millikelvin (around –273 degrees Celsius).
So what's going on here? Fortunately, the team has already come up with a hypothesis to explain why this material could behave like a quantum spin liquid without breaking our conventional understanding of the state of matter.
Using numerical simulations, they've shown that competition is the key to the strange behaviour - different magnetic interactions in the materials are competing with each other, and keeping the spins flip-flopping around.
You can see that happening in the illustration below, which shows the competing interactions on each atom (the grey and black balls). The green and red sticks represent ferromagnetic interactions, while the blue sticks represent anti-ferromagnetic interactions, which are forcing the spins to keep changing.
-HZB,- spin-, quantum,- state, -liquid, -material,- nbsp,- interactions, -matter, -materials,- understanding,- team, -but, -magnetic,- anti-ferromagnetic, -time, -atom, -electrons,- http://www.woobleweb.com/

"The work expands our understanding of magnetic materials, and also shows us that there are potentially far more candidates for spin liquids than expected,"said Lake.
The research has been published in Nature Physics, and now needs to be verified by other teams before we say for sure that quantum spin liquid state can exist in these new types of materials.

But it's a pretty exciting study that hugely widens the potential pool of materials that we could use in future to build quantum computers. We can't wait to find out more.

neil-degrasse-tyson-explain-about-universe-the-scientist
Expert mind-blower, Pluto-hater and all-around explainer Neil DeGrasse Tyson has now proved he can explain everything in the universe by explaining literally everything in the universe.




On MinutePhysics, the famed astrophysicist draws from his book “Origins: Fourteen Billion Years of Cosmic Evolution.” He starts with the beginning of time about 13.7 billion years ago, when “all the space, and all the matter, and all the energy of the known universe was contained in a volume less than one-trillionth the size of the point of a pin.” He ends with homosapiens, who are enabled “to deduce the origin and the evolution of the universe,” like Tyson just did.


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