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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.




Deep inside the diffuse haze of fuel and dirt that surround the smallest galaxies, darkish count may be
clumping into bloodless droplets referred to as 'Bose stars'.
Of route, we do not even recognize what the mysterious darkish matter is, not to mention have evidence
of invisible 'stars'. but if modern assumptions pan out, a new mathematical version suggests darkish
remember might have some atypical interactions.
The version became proposed by means of a group of Russian physicists who considered the manner
hypothetical particles of darkish remember would possibly aggregate inside the smallest of galactic halos.
"In our paintings, we simulated the movement of a quantum gasoline of light, gravitationally interacting
dark count particles," says physicist Dmitry Levkovfrom the Institute for Nuclear studies of the Russian
Academy of Sciences.
round eighty percent of the mass inside the Universe is product of something we can't seem to detect.
anything it is, it would not have interaction with normal depend through the usual channels, along with
through replacing photons through the electromagnetic area.
The handiest signal of its presence is the delivered oomph it provides to the clumping of galaxies. still,
it is no small element– this unseen gravitational tax has already been mapped out in element, supplying
us with key information on its nature.
thanks to its clean affinity for galaxies, we are able to count on the rate of the stuff making up dark rely
isn't always speedy sufficient to shoot off into the voids of space. It must be incredibly sluggish moving.
One candidate for this slow darkish count is a hypothetical particle called an axion. they may be a kind
of boson – not not like the photon – that become proposed as an answer for every other perplexing
paradox in quantum physics.
every other alternative is fuzzy darkish count number. it's but every other kind of boson, invented as a
option to a dilemma in astrophysics concerning the distribution of dark remember in galactic haloes.
Neither of those bespoke bosons were proven to exist. however if at least certainly one of them became
out to be actual, below some occasions they could do a little thrilling things.
The authors claim the model is the primary to take a look at the kinetics of one of these darkish remember
Bose-Einstein condensate simply forming.
Bose-Einstein condensates are the anonymous rallies of quantum debris. when the temperature drops
to simply above absolute 0, debris cease blending and lose their person identities to appearance eerily
the identical.
previous attempts have stuck to asking what takes place when the bosons have already come together,
along with in an little one Universe. In this case, they commenced with a jumble of interacting bosons.
"We began from a virialized kingdom with maximal mixing, that is type of opposite to the Bose-Einstein
condensate," says Levkov.
"After a totally lengthy length, a 100,000 times longer than the time wished for a particle to go the
simulation extent, the particles spontaneously shaped a condensate, which immediately formed itself
right into a round droplet, a Bose big name, beneath the impact of gravity."
In effect, a cloud of 'dark' bosons turns into the same particle. not handiest that, the physicists have
worked out this cloud can pull together under gravitational results to form a globe – a Bose 'star'.
The situations for those hypothetical items would want to be fairly precise, consisting of focused inside
the center of the rather small halo surrounding a dwarf galaxy. or even then, while it should take place
within the life of the Universe, it might nevertheless be a slow method.
these varieties of 'what if?' scenarios would possibly sound a bit sci-fi, however they help us enhance
limitations on where to seek for clues in this whole dark depend mystery.
"the next apparent step is to expect the number of the Bose stars inside the Universe and calculate
their mass in fashion with mild darkish matter," says Levkov.
someday we will ultimately have a draw close on the fundamental nature of this ghostly mass.
whilst we do, we are almost surely going to locate a few captivating new systems hiding in undeniable view a few of the stars.
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