Paramagnetic Diamagnetic
Iron Bismuth
Nickel Phosphorus
Cobalt Antimony
Aluminium Zinc
Manganese Mercury
Chromium Lead
Cerium Silver
Titanium Copper
Platinum Water
Many ores and Alcohol
salts of the Tellurium
above metals Selenium
Oxygen Sulphur
Thallium
Hydrogen
Air
We have theories of magnetism that reduce it to a phenomenon of
electricity, though we are ignorant of the real nature of both. If
we take a thin bar magnet and break it in two, we find that we
have now two shorter magnets, each with its "north" and "south"
poles, that is to say, poles of the same kind as the south and
north--magnetic poles of the earth. If we break each of these
again, we get four smaller magnets, and we can repeat the process
as often as we like. It is supposed, therefore, that every atom of
the bar is a little magnet in itself having its two opposite
poles, and that in magnetising the bar we have merely partially
turned all these atoms in one direction, that is to say, with
their north poles pointing one way and their south poles the other
way, as shown in figure 27. The polarity of the bar only shows
itself at the ends, where the molecular poles are, so to speak,
free.
There are many experiments which support this view. For example,
if we heat a magnet red hot it loses its magnetism, perhaps
because the heat has disarranged the particles and set the
molecular poles in all directions. Again, if we magnetise a piece
of soft iron we can destroy its magnetism by striking it so as to
agitate its atoms and throw them out of line. In steel, which is
iron with a small admixture of carbon, the atoms are not so free
as in soft iron, and hence, while iron easily loses its magnetism,
steel retains it, even under a shock, but not under a cherry red-
heat. Nevertheless, if we put the atoms of soft iron under a
strain by bending it, we shall find it retain its magnetism more
like a bit of steel.
It has been found, too, that the atoms show an indisposition to be
moved by the magnetising force which is known as HYSTERESIS. They
have a certain inertia, which can be overcome by a slight shock,
as though they had a difficulty of turning in the ranks to take up
their new positions. Even if this molecular theory is true,
however, it does not help us to explain why a molecule of matter
is a tiny magnet. We have only pushed the mystery back to the
atom. Something more is wanted, and electricians look for it in
the constitution of the atom, and in the luminiferous ether which
is believed to surround the atoms of matter, and to propagate not
merely the waves of light, but induction from one electrified body
to another.
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