Examined in this way, it has been found that the β rays of uranium,
thorium, and radium consist entirely of rays readily deflected by a
magnetic field. The rays from polonium consist entirely of α rays, the
deviation of which can be detected only in very intense magnetic fields.
When the screen covering the active material is removed, in a strong
magnetic field, the ionization in the vessel is mainly due to the α
rays. On account of the slight deviation of the α rays under ordinary
experimental conditions, a still greater increase of the magnetic field
does not appreciably alter the current due to them in the testing
vessel.
The action of a magnetic field on a very active substance like radium is
easily shown by the electrical method, as the ionization current due to
the deviable rays is large. With substances of small activity like
uranium and thorium, the ionization current due to the deviable rays is
very small, and a sensitive electrometer or an electroscope is required
to determine the variation, in a magnetic field, of the very small
current involved. This is especially the case for thorium oxide, which
gives out only about ⅕ of the amount of deviable rays given out by the
same weight of uranium oxide.
=79. Experiments with a fluorescent screen.= The β rays from a few
milligrams of pure radium bromide produce intense fluorescence in barium
platinocyanide and other substances which can be made luminous under
the influence of the cathode rays. Using a centigram of radium bromide,
the luminosity on a screen, placed upon it, is bright enough to be
observed in daylight. With the aid of such a screen in a dark room many
of the properties of the β rays may be simply illustrated and their
complex nature clearly shown. A small quantity of radium is placed in
the bottom of a short, narrow, lead tube open at one end. This is placed
between the pole pieces of an electromagnet, and the screen placed below
it. With no magnetic field, a faint luminosity of the screen is observed
due to the very penetrating γ rays which readily pass through the lead.
When the magnetic field is put on, the screen is brightly lighted up on
one side over an area elliptical in shape (section 77). The direction of
deviation is reversed by reversal of the field. The broad extent of the
illumination shows the complex nature of the β rays. On placing a
metallic object at various points above the screen, the trajectory of
the rays can readily be traced by noticing the position of the shadow
cast upon the screen. By observing the density of the shadow, it can be
seen that the rays most easily deviated are the least penetrating.
Comparison of the β rays with cathode rays.
=80. Means of comparison.= In order to prove the identity of the β rays
from active bodies with the cathode rays produced in a vacuum tube, it
is necessary to show
(1) That the rays carry with them a negative charge;
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