In order to eliminate as far as possible the error due to this
absorption, in some experiments made by the writer, the active deposit
obtained from the radium emanation rather than radium itself was used as
a source of β rays. A lead rod, 4 cms. long and 4 mms. in diameter, was
exposed as the negative electrode in a large quantity of the radium
emanation for three hours. The rod was then removed and the γ ray effect
from it immediately measured by an electroscope and compared with the
corresponding γ ray effect from a known weight of radium bromide in
radio-active equilibrium. Since the active deposit contains the product
radium C which alone emits β rays, and, since the intensities of the β
and γ rays are always proportional to each other, the number of β
particles expelled from the lead rod per second is equal to the
corresponding number from the weight of radium bromide which gives the
same γ ray effect as the lead rod.
The rod was then enveloped in a thickness of aluminium foil of ·0053
cms.—a thickness just sufficient to absorb the α rays—and made the
insulated electrode in a cylindrical metal vessel which was rapidly
exhausted to a low pressure. The current in the two directions was
measured at intervals by an electrometer, and, as we have seen in
section 93, the algebraic sum of these currents is proportional to _ne_,
where _n_ is the number of β particles expelled per second from the lead
rod, and _e_ the charge on each particle. The activity of the radium C
decayed with the time, but, from the known curve of decay, the results
could be corrected in terms of the initial value immediately after the
rod was removed from the emanation.
Taking into account that half of the β particles emitted by the active
deposit were absorbed in the radium itself, and reckoning the charge on
the β particle as 1·13 × 10⁻¹⁹ coulombs, two separate experiments gave
7·6 × 10¹⁰ and 7·0 × 10¹⁰ as the total number of β particles expelled
per second from one gram of radium. Taking the mean value, we may
conclude that the total number of β particles expelled per second from
one gram of radium in radio-active equilibrium is about 7·3 × 10¹⁰.
The total number of α particles expelled from one gram of radium at its
minimum activity has been shown to be 6·2 × 10¹⁰ (section 93). The
approximate agreement between these numbers is a strong indication of
the correctness of the theoretical views previously discussed. It is to
be expected that the number of β particles, deduced in this way, will be
somewhat greater than the true value, since the β particles give rise to
a secondary radiation consisting also of negatively charged particles
moving at a high speed. These secondary β particles, arising from the
impact of the β particles on the lead, will pass through the aluminium
screen and add their effect to the primary β rays.
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