Essays: Scientific, Political, & Speculative; Vol. 1 of 3: Library Edition (1891), Containing Seven Essays not before Republished, and Various other Additions.Spencer, Herbert
Philosophy
Essays: Scientific, Political, & Speculative; Vol. 1 of 3: Library Edition (1891), Containing Seven Essays not before Republished, and Various other Additions.
Spencer, Herbert
Philosophy; Political science; Science
Before going on to show how organic progress also depends on the law
that every force produces more than one change, we have to notice the
manifestation of this law in yet another species of inorganic
progress--namely, chemical. The same general causes that have wrought
out the heterogeneity of the Earth, physically considered, have
simultaneously wrought out its chemical heterogeneity. There is every
reason to believe that at an extreme heat the elements cannot combine.
Even under such heat as can be artificially produced, some very strong
affinities yield, as, for instance, that of oxygen for hydrogen; and the
great majority of chemical compounds are decomposed at much lower
temperatures. But without insisting on the highly probable inference,
that when the Earth was in its first state of incandescence there were
no chemical combinations at all, it will suffice for our purpose to
point to the unquestionable fact that the compounds which can exist at
the highest temperatures, and which must, therefore, have been the first
that were formed as the Earth cooled, are those of the simplest
constitutions. The protoxides--including under that head the alkalies,
earths, &c.--are, as a class, the most stable compounds we know: most of
them resisting decomposition by any heat we can generate. These are
combinations of the simplest order--are but one degree less homogeneous
than the elements themselves. More heterogeneous, less stable, and
therefore later in the Earth's history, are the deutoxides, tritoxides,
peroxides, &c.; in which two, three, four, or more atoms of oxygen are
united with one atom of metal or other element. Higher than these in
heterogeneity are the hydrates; in which an oxide of hydrogen, united
with an oxide of some other element, forms a substance whose atoms
severally contain at least four ultimate atoms of three different kinds.
Yet more heterogeneous and less stable still are the salts; which
present us with molecules each made up of five, six, seven, eight, ten,
twelve, or more atoms, of three, if not more, kinds. Then there are the
hydrated salts, of a yet greater heterogeneity, which undergo partial
decomposition at much lower temperatures. After them come the further
complicated supersalts and double salts, having a stability again
decreased; and so throughout. Without entering into qualifications for
which space fails, we believe no chemist will deny it to be a general
law of these inorganic combinations that, _other things equal_, the
stability decreases as the complexity increases. When we pass to the
compounds of organic chemistry, we find this general law still further
exemplified: we find much greater complexity and much less stability. A
molecule of albumen, for instance, consists of 482 ultimate atoms of
five different kinds. Fibrine, still more intricate in constitution,
contains in each molecule, 298 atoms of carbon, 49 of nitrogen, 2 of
sulphur, 228 of hydrogen, and 92 of oxygen--in all, 669 atoms; or, more
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