We have seen that living beings are transformers of energy and of matter,
evolutionary in form and liquid in consistency; that they are solutions of
colloids and crystalloids separated by osmotic membranes to form
microscopic cells, or consisting merely of a gelatinous mass of protoplasm,
with a nucleus of slightly differentiated material. The elementary
phenomenon of life is the contact of two different solutions. This is the
initial physical phenomenon from which proceed all the other phenomena of
life in accordance with the ordinary chemical and physical laws. Thus the
basis of biological science is the study of solution and of the phenomena
which occur between two different solutions, either in immediate contact or
when separated by a membrane.
A solution is a homogeneous mixture of one or more solutes in a liquid
solvent. Before solution the solute or dissolved substance may be solid,
liquid, or gaseous.
Solutes, or substances capable of solution, may be divided into two
classes--substances which are capable of crystallization, or crystalloids;
and those which are incapable of crystallization, the colloids.
Crystalloids may be divided again into two classes, those whose solutions
are ionizable and therefore conduct electricity, chiefly salts, acids, and
bases; and those whose solutions are non-ionizable and are therefore
non-conductors. These latter are for the most part crystallizable
substances of organic origin, such as sugars, urea, etc.
Avogadro's law asserts that under similar conditions of temperature and
pressure, equal volumes of various gases {15} contain an equal number of
molecules. Under similar conditions, the molecular weights of different
substances have therefore the same ratio as the weights of equal volumes of
their vapours. Hence if we fix arbitrarily the molecular weight of any one
substance, the molecular weight of all other substances is thereby
determined. The molecular weight of hydrogen has been arbitrarily fixed as
two, and hence the molecular weight of any substance will be double its
gaseous density when compared with that of hydrogen.
_Gramme-Molecule._--A gramme-molecule is the molecular weight of a body
expressed in grammes. Occasionally for brevity a gramme-molecule is spoken
of as a "molecule." Thus we may say that the molecular weight of oxygen is
16 grammes, meaning thereby that there are the same number of molecules in
16 grammes of oxygen as there are atoms in 1 gramme of hydrogen.
Public-domain text, read in full here on John Shaqi.
Reviews
Reviews
No reviews yet
Be the first to share your thoughts on this work.
Join the Discussion
Join the discussion
Sign in to leave a comment or review.
Sign InorCreate an account