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
Most of the atom’s weight comes from its nucleus. Even the lightest
known nucleus weighs about 1840 times as much as an electron. In spite
of this, the nucleus occupies only a tiny portion of the total volume of
the atom. In fact, the nucleus is about as big in comparison to the
whole atom as the atom is in comparison to the human cell. Twenty
thousand nuclei laid side by side would be about equal in length to the
diameter of the atom. If matter were composed of nothing but nuclei
densely packed together, an object the size of a penny would weigh
approximately forty million tons.
Later we are going to see that the size of the nucleus has a great
effect upon the ways in which nuclei react with each other. For that
very reason the size of the nucleus is a well-defined measurable
quantity. It is much harder to say precisely what one means by the size
of the electron. It seems acceptable to say that it is somewhat less
than the size of the average nucleus. In any case it is certain that
both the electrons and the nucleus are small compared to the size of the
whole atom. Consequently, the atom must consist mostly of empty space.
This means, of course, that when you look at solid matter, what is
before your eyes is empty space with a slight addition of real
substance. What lends strength to solids is the interplay of electric
attractions and repulsions inside atoms and between atoms.
When a charged particle, such as an electron or a nucleus, happens to
move through solid matter, it is constantly acted on by large electric
forces. To such a particle matter does not seem to be very transparent.
But if there were such a thing as an electrically neutral particle,
comparable in size to the nucleus, it would be able to move around
freely inside matter, without experiencing electric forces, and only now
and again bumping into a nucleus or maybe an electron. As a matter of
fact, there is such a particle and it can pass right through an inch or
two of solid matter without bumping into anything. Later on in this book
we shall be very interested in this particle, which is called a neutron.
Although the electrons and the nucleus are charged particles, the atom
as a whole is electrically neutral; this means that the positive charge
of the nucleus must be equal in magnitude to the total charge of all the
negative electrons. All electrons have precisely the same charge, which
is the smallest charge that has ever been observed. What is particularly
strange and not yet explained is the fact that all other charges are as
big as the electron charge, or twice as big, or three times as big, or a
million times as big. But we never find a charge which, expressed in
terms of the electron charge, is fractional. No object ever carries
three and a half electron charges. The electron charge therefore may be
used conveniently as a standard unit of charge.
Public-domain text, read in full here on John Shaqi.
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