Between xenon and niton comes the period of 32 elements, so that
in constructing a model of the niton atom in its normal state we
have to find room for 32 new electrons. This is done as follows:
the first three rings remain unchanged; the fourth is augmented to
[Pg 95]
contain 32 electrons, 8) in each group that previously held
6, and 8 in circular orbits; the fifth ring is increased from
8 electrons to 18, of which there are 6 in each group that
previously held 4, and 6 in a new group of slightly eccentric
orbits; the sixth ring contains 8 electrons, four moving in very
eccentric orbits (length six times breadth), the other four in less
eccentric orbits (length three times breadth). It would of course be
possible to go on constructing models of atoms with larger numbers of
electrons, but after niton only six more elements are known, and they
are breaking down through radio-activity. It seems therefore that the
series stops where it does because heavier atoms would not be stable.
However, since new elements are discovered from time to time, we cannot
be sure that no element heavier than uranium will ever be discovered.
It would therefore be rash to get to work to prove that such elements
are impossible.
It must not be supposed that the above models of complicated atoms
have the same degree of certainty as the theory of the hydrogen atom.
They are as yet in part speculative. But it is in the highest degree
probable that the models give a more or less correct general picture
of the way the electrons behave when the atoms in question are in
[Pg 96]
their most stable state. The emission of light and X-rays occurs when
one electron makes a transition towards the most stable configuration,
which is the one intended to be described by the models we have been
considering. Absorption, on the contrary, takes place when there is a
transition away from the most stable configuration under the influence
of outside forces.
[8]
0p. cit. p. 113
[Pg 97]
IX.
X-RAYS
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