Our Nuclear Future: Facts, Dangers and Opportunities — John Shaqi
Our Nuclear Future: Facts, Dangers and OpportunitiesTeller, Edward
Science
Our Nuclear Future: Facts, Dangers and Opportunities
Teller, Edward
Nuclear energy -- Popular works; Nuclear weapons; Radioactivity -- Physiological effect
When two or more atoms approach each other, whether they are similar or
different, their electrons—particularly the outermost ones—find new
states of motion instead of those that were available to them when there
was only one nucleus in the vicinity. It may now happen that amongst
these new states of motion there are some that are even more stable than
the state of the separated atoms. In this event the atoms will tend to
stick together, and the electrons will adopt whatever new state of
motion now corresponds to maximum stability. The composite system of the
atoms is called a molecule, and its state of maximum stability, the
ground state of the molecule.
There are atoms of particularly great stability which cannot increase
their stability by combining with other atoms. Examples are helium,
neon, and argon. These atoms tend to remain single, retain their
independent motion in a rather “permanent” gaseous state, and are
generally unsociable. They are called therefore the noble gases.[1]
An especially simple example of the formation of a molecule is the
combining of sodium and chlorine to form ordinary table salt. The sodium
atom happens to have a rather loosely bound outer electron. The chlorine
atom possesses a convenient niche for an extra electron. Consequently
the energy spent in prying the outer electron loose from the sodium atom
is largely repaid by adding it to the chlorine atom. The remaining
sodium “atom,” deprived of one of its electrons, now has a net positive
charge.[2] The chlorine “atom” with its extra electron has a net
negative charge. The two “atoms” therefore attract each other to make a
molecule of sodium chloride. Actually matter will continue to aggregate.
A great number of positive sodium “atoms” and negative chlorine “atoms”
will arrange themselves into a beautiful and regular lattice which is
the sodium chloride crystal.
The simplest molecule which does not tend to grow into a bigger
aggregate is made up of two hydrogen atoms. Around two hydrogen nuclei a
particularly stable pattern of two electrons can be formed. Because of
this fact hydrogen atoms associate pairwise so that this pattern should
become possible.
The ways in which atoms can be joined are incredibly manifold. They can
form metals in which the outer electrons roam freely and carry electric
currents with the greatest of ease. They can form liquids in which atoms
or molecules are tied together in a loose and disorderly fashion. They
can move independently making occasional encounters, which is what
happens in a gas. And they can form long spiraling molecules where
groups of atoms are strung together without an apparent simple order,
but in a way which is somehow related to the processes of life.
[Illustration: Arrangement of sodium and chlorine “atoms” in a
crystal of common salt.]
Public-domain text, read in full here on John Shaqi.
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