The scintillating points of light on the screen are the result of the
impact of the α particles on its surface. If the radium is covered with
a layer of foil of sufficient thickness to absorb all the α rays the
scintillations cease. There is still a phosphorescence to be observed on
the screen due to the β and γ rays, but this luminosity is not marked by
scintillations to any appreciable extent. Sir William Crookes showed
that the number of scintillations was about the same in vacuo as in air
at atmospheric pressure. If the screen was kept at a constant
temperature, but the radium cooled down to the temperature of liquid
air, no appreciable difference in the number of scintillations was
observed. If, however, the screen was gradually cooled to the
temperature of liquid air, the scintillations diminished in number and
finally ceased altogether. This is due to the fact that the screen loses
to a large extent its power of phosphorescence at such a low
temperature.
Not only are scintillations produced by radium, actinium, and polonium,
but also by the emanations and other radio-active products which emit α
rays. In addition, F. H. Glew[154] has found that they can be observed
from the metal uranium, thorium compounds and various varieties of
pitchblende. In order to show the scintillations produced by
pitchblende, a flat surface was ground, and a transparent screen, whose
lower surface was coated with zinc sulphide, placed upon it. Glew has
designed a modified and very simple form of spinthariscope. A
transparent screen, coated on one side with a thin layer of zinc
sulphide, is placed in contact with the active material, and the
scintillations observed by a lens in the usual way.
Since there is no absorption in the air, the luminosity is a maximum.
The relative transparency of different substances placed between the
active material and the screen may, in this way, be directly studied.
The production of scintillations appears to be a general property of the
α rays from all radio-active substances. The scintillations are best
shown with a zinc sulphide screen; but are also observed with willemite
(zinc silicate), powdered diamond, and potassium platinocyanide (Glew,
_loc. cit._). If a screen of barium platinocyanide is exposed to the α
rays from radium, the scintillations are difficult to observe, and the
luminosity is far more persistent than for a zinc sulphide screen
exposed under the same conditions. The duration of the phosphorescence
in this case probably accounts for the absence of visible
scintillations.
Public-domain text, read in full here on John Shaqi.
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