The Principles of Biology, Volume 1 (of 2) — John Shaqi
The Principles of Biology, Volume 1 (of 2)Spencer, Herbert
Science
The Principles of Biology, Volume 1 (of 2)
Spencer, Herbert
Biology
tendency which may or may not take effect, according to the weakness or
strength of their union, and according to the presence or absence of
collateral affinities. This inference is in harmony with several
significant facts. Dr. Draper remarks that "among metallic substances
(compounds) those first detected to be changed by light, such as silver,
gold, mercury, lead, have all high atomic weights; and such as sodium and
potassium, the atomic weights of which are low, appeared to be less
changeable." As here interpreted, the fact specified amounts to this; that
the compounds most readily decomposed by light, are those in which there is
a marked contrast between the atomic weights of the constituents, and
probably therefore a marked contrast between the rapidities of their
vibrations. The circumstance, too, that different chemical compounds are
decomposed or modified in different parts of the spectrum, implies that
there is a relation between special orders of undulations and special
orders of molecules--doubtless a correspondence between the rates of these
undulations and the rates of oscillation which some of the components of
such molecules will assume. Strong confirmation of this view may be drawn
from the decomposing actions of those longer ethereal waves which we
perceive as heat. On contemplating the whole series of diatomic compounds,
we see that the elements which are most remote in their atomic weights, as
hydrogen and the noble metals generally, will not combine at all, or do so
with great difficulty: their vibrations are so unlike that they cannot keep
together under any conditions of temperature. If, again, we look at a
smaller group, as the metallic oxides, we see that whereas those metals
which have atoms nearest in weight to the atoms of oxygen, cannot be
separated from oxygen by heat, even when it is joined by a powerful
collateral affinity; those metals which differ more widely from oxygen in
their atomic weights, can be de-oxidized by carbon at high temperatures;
and those which differ from it most widely combine with it very
reluctantly, and yield it up if exposed to thermal undulations of moderate
intensity. Here indeed, remembering the relations among the atomic weights
in the two cases, may we not suspect a close analogy between the
de-oxidation of a metallic oxide by carbon under the influence of the
longer ethereal waves, and the de-carbonization of carbonic acid by
hydrogen under the influence of the shorter ethereal waves?
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