The rays which are the most active electrically are the least active
photographically. Under ordinary conditions, most of the photographic
action of uranium, thorium, and radium, is due to the β or cathodic
rays. The α rays from uranium and thorium, on account of their weak
action, have not yet been detected photographically. With active
substances like radium and polonium, the α rays readily produce a
photographic impression. So far the γ rays have been detected
photographically from radium only. That no photographic action of these
rays has yet been established for uranium and thorium is probably due
merely to the fact that the effect sought for is very small, and during
exposures for long intervals it is very difficult to avoid fogging of
the plates owing to other causes. Considering the similarity of the
radiations in other respects, there can be little doubt that the γ rays
do produce some photographic action, though it is too small to observe
with certainty.
These differences in the photographic and ionizing properties of the
radiations must always be taken into account in comparing results
obtained by the two methods. The apparent contradiction of results
obtained by different observers using these two methods is found to be
due to their differences in relative photographic and ionizing action.
For example, with the unscreened active material, the ionization
observed by the electrical method is due almost entirely to α rays,
while the photographic action under the same condition is due almost
entirely to the β rays.
It is often convenient to know what thickness of matter is sufficient to
absorb a specific type of radiation. A thickness of aluminium or mica of
·01 cms. or a sheet of ordinary writing-paper is sufficient to absorb
completely all the α rays. With such a screen over the active material,
the effects are due only to the β and γ rays, which pass through with a
very slight absorption. Most of the β rays are absorbed in 5 mms. of
aluminium or 2 mms. of lead. The radiation passing through such screens
consists very largely of the γ rays. As a rough working rule, it may be
taken that a thickness of matter required to absorb any type of rays is
inversely proportional to the density of the substance, _i.e._ the
absorption is proportional to the density. This rule holds approximately
for light substances, but, in heavy substances like mercury and lead,
the radiations are about twice as readily absorbed as the density rule
would lead us to expect.
PART II.
The β or Cathodic Rays.
Public-domain text, read in full here on John Shaqi.
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