=5. Oxygen= exists in the free gaseous state in the atmosphere of which
it constitutes about one-fifth by bulk, whilst in combination with other
elements it forms nearly half the weight of the solid earth, and
eight-ninths by weight of water. It enters into combination with all the
other elements, except fluorin, forming what are known as oxids, and
with many of the elements it unites in several proportions, forming
oxids of different composition. Combined with silicon, carbon, sulfur,
and phosphorus, it forms an essential part of the silicates, carbonates,
sulfates, and phosphates, most of which are very abundant and all of
which are very widely distributed in the earth’s crust. In this form it
is exceedingly stable and is rarely set free. With the exception of the
oxids of silicon these oxids seldom occur uncombined with the metals as
constituents of rocks or soils. The oxids of iron very commonly occur as
such in rocks and soils, and play a very important part in organic life.
The several oxids of iron very frequently determine the color of soils;
as the iron in a soil is more or less oxidized, or as it is exposed more
or less to access of air, the color of the soil changes. These oxids of
iron also play an important part in the absorption capacities of soils
for moisture and other physical conditions of soils, and also in the
oxidation of organic matters in the soil. Many organic substances, and
even the roots of growing plants when deprived of free access of air,
can readily secure oxygen from the iron oxid, thus reducing the iron to
a lower form of oxidation, the oxygen being used for the oxidation of
the organic matter or for the needs of the growing plant; while the
lower oxid of iron can more readily take up oxygen of the air and again
be converted into a higher oxid, ready again to give up a part of its
oxygen and thus serve as a carrier.
=6. Silicon= never occurs in the free state, but combined with oxygen it
forms silica, which constitutes more than one-half of the earth’s crust.
The oxid of silicon occurs in the very common form of quartz, and
likewise, as silicate of alumina, lime or magnesia. Silicon forms an
essential part of many minerals, such as the feldspars, amphiboles,
pyroxenes, and the micas, besides being an essential ingredient of many
other minerals. Silica is relatively very slightly affected by the
ordinary forces concerned in the decay of rocks, and even after the
crystals of feldspars, micas, and other common minerals occurring in
rocks have been disintegrated the silica remains as hard grains of sand,
forming the bulk of most soils. By far the larger part of silicon in
soils is in the form of grains of quartz or silica. This form, however,
is probably chemically inert in regard to plant growth, but it plays a
very important part in the physical structure of soils and in the
physical relation of soils to plant growth.
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