Many points of interest arise, but I will only touch on one or two.
Why are the calcium atoms ionized? In the calm of interstellar space
we seem to have passed away from the turmoil which smashed the calcium
atoms in the interior of a star; so at first it seems difficult to
understand why the atoms in the cloud should not be complete. However,
even in the depths of space the breaking-up of the atom continues;
because there is always starlight passing across space, and some of
the light-waves are quite powerful enough to wrench a first or second
electron away from the calcium atom. It is one of the most curious
discoveries of modern physics that when a light-wave is attenuated
by spreading, what it really suffers from is _laziness_ rather
than actual loss of power. What is weakened is not the power but the
probability that it will display the power. A light-wave capable of
bursting an atom still retains the power when it is attenuated a
million-fold by spreading; only it is a million times more sparing in
the exercise of the power. To put it another way, an atom exposed to
the attenuated waves will on the average have to wait a million times
longer before a wave chooses to explode it; but the explosion when it
does occur will be of precisely the same strength however great the
attenuation. This is entirely unlike the behaviour of water-waves; a
wave which is at first strong enough to capsize a boat will, after
spreading, become too weak. It is more like machine-gun fire which is
more likely to miss a given object at greater distance but is equally
destructive if it hits. The property here referred to (the quantum
property) is the deepest mystery of light.
Thus in interstellar space electrons are still being torn from calcium
atoms, only very infrequently. The other side of the question is the
rate of repair, and in this connexion the low density of the cosmic
cloud is the deciding factor. The atom has so few opportunities for
repair. Roving through space the atom meets an electron only about
once a month, and it by no means follows that it will capture the first
one it meets. Consequently very infrequent smashing will suffice to
keep the majority of the atoms ionized. The smashed state of the atoms
inside a star can be compared to the dilapidation of a house visited by
a tornado; the smashed state in interstellar space is a dilapidation
due to ordinary wear and tear coupled with excessive slackness in
making repairs.
A calculation indicates that most of the calcium atoms in interstellar
space have lost two electrons; these atoms do not interfere with the
light and give no visible spectrum. The ‘fixed lines’ are produced by
atoms temporarily in a better state of repair with only one electron
missing; they cannot amount at any moment to more than one-thousandth
of the whole number, but even so they will be sufficiently numerous to
produce the observed absorption.
Public-domain text, read in full here on John Shaqi.
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