The Rare Earths: Their Occurrence, Chemistry, and TechnologyLevy, Stanley Isaac
Science
The Rare Earths: Their Occurrence, Chemistry, and Technology
Levy, Stanley Isaac
Rare earths
The question of the origin of helium in minerals is, however, not
definitely settled, for several anomalous cases are known. Thus the
yttria silicate, Thalénite (_q.v._), contains quantities of helium, but
no uranium or thorium is given in the analyses. Similarly, Risörite
contains a relatively large quantity of helium, but only traces of
uranium and thorium. In the last mineral, the active constituent is
precipitated with the lead, so that no radio-thorium appears to be
present. Further, Thomsen analysed a fluorspar from Ivitgut in Greenland
which he found to contain 27 c.c. of helium per kilogram. This specimen
contains no uranium, but gives off the thorium emanation in quantities
which suggest the presence of radio-thorium; moderate quantities of
thorium are also present. Since the α particle has been definitely
identified as a positively charged helium atom, it appears certain that
disintegration in all three series (uranium, actinium, and thorium
series) produces helium, and a mineral containing a member of any of
these series (which gives α rays or α ray-giving products) would also
contain helium.
Even so, there is a case in which the helium content is anomalous, if
not altogether beyond explanation at the present stage. In examining a
large number of minerals for helium, Strutt[136] found that some samples
of beryl, a beryllium aluminium silicate, contain a relatively very
large amount of helium, but only traces of thorium, and was altogether
inactive. The absence of any active constituent renders untenable the
ordinary explanations of the presence of such a surprising quantity of
helium. Boltwood has put forward a suggestion which in the present state
of our knowledge must be regarded as a provisional explanation. He
conceives that in the concentration of beryllium from the parent magma,
it may have become associated with some short-lived intermediate
radioactive element, which had been altogether separated from its
long-lived parent element in the process of concentration; this
intermediate element, having collected in the crystallised beryl,
decayed completely in the course of the great period which must have
elapsed, leaving the helium to which it had given rise during its
disintegration enclosed in the mineral. It is difficult to see how two
substances which must be so intimately connected as a parent-element and
its product could be completely separated in the process of cooling of a
magma; but since so little is known of the process of crystallisation of
minerals, the suggestion can hardly be rejected on geological grounds.
In any case, we have here only one strongly marked exception to the very
definite rule that in all cases in which helium occurs in minerals, it
is accompanied by and undoubtedly produced from, a radioactive element
or elements; and in the majority of cases, the helium in minerals is
produced by disintegration of uranium or thorium and their products.
[136] _Proc. Roy. Soc._ 1908, A, ~80~, 572.
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