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
But now we encounter again the difficulty associated with charged
particles. Only one alpha particle in a million undergoes a nuclear
reaction to produce a neutron. The neutron, of course, makes a nuclear
reaction every time. Over-all, then, we obtain two nuclear reactions per
million nuclear projectiles, instead of one per million. With such
methods we are not so much better off than the old alchemists. A cheap
and plentiful source of neutrons would, however, put the alchemist in
business. In this way one could make rare elements and radioactive
isotopes, and what is more important, he would be able to utilize
concentrated nuclear energy.
CHAPTER VII
Fission and the Chain Reaction
Neutrons are ideal projectiles for nuclear bombardment because they
carry no charge, can approach nuclei easily, and interact with them
strongly. These neutral particles, discovered by James Chadwick in 1932,
were used soon afterward by Enrico Fermi and his collaborators to
bombard most of the elements of the periodic table. Very often in these
experiments a nucleus would capture a neutron and become unstable with
too much weight for its charge. Stability would then be restored by a
beta decay, leaving the nucleus with one more unit of charge than it had
to begin with. In 1934 Fermi tried this experiment with uranium, charge
92, the most highly charged element known at that time. He hoped to make
a transuranic element with charge 93.
Throughout the experiments the uranium was observed with radioactive
counters and found to become far more radioactive than uranium
ordinarily is in its natural state. There was no way to account for all
this radioactivity except to assume that new elements had been formed in
the process of neutron bombardment. A chemical analysis revealed no
elements with charges between 86 and 91. From this evidence Fermi
concluded that no elements of charge less than 92 had been made and
therefore the radioactivity must be due to charges greater than 92. He
concluded that transuranic elements had been made in the laboratory.
Neither Fermi nor anyone else, however, was happy with this conclusion.
There was far too great a variety of radioactivity for comfort. It had
to be assumed that not only was the element with charge 93 being made,
but also elements with charges 94, 95, and many more. This was very hard
to understand. Ida Noddack,[8] a chemist, published a paper proposing an
alternative explanation of the experiment: that a nucleus of uranium,
when it captures a neutron, might break up into two fragments that could
have any of various weights and charges. In other words, she suggested
that Fermi had produced nuclear fission.
Public-domain text, read in full here on John Shaqi.
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