The Microscope. Its History, Construction, and Application 15th ed.: Being a familiar introduction to the use of the instrument, and the study of microscopical scienceHogg, Jabez
History
The Microscope. Its History, Construction, and Application 15th ed.: Being a familiar introduction to the use of the instrument, and the study of microscopical science
Hogg, Jabez
Microscopy; Natural history
Common light moves in two planes at right angles to each other, while
polarised light moves in one plane only. Common light may be turned
into polarised light either by transmission or reflection; in the
first instance, one of the planes of common light is got rid of by
reflection; in the other, by absorption. Huyghens was one of the first
physicists to notice that a ray of light has not the same properties in
every part of its circumference, and he compared it to a magnet or a
collection of magnets; and supposed that the minute particles of which
it was said to be composed had different poles, which, when acted on in
certain ways, arranged themselves in particular positions; and thence
the term _polarisation_, a term having neither reference to cause nor
effect. It is to Malus, however, who, in 1808, discovered polarisation
by reflection, that we are indebted for the series of splendid
phenomena which have since that period been developed; phenomena of
such surpassing beauty as to exceed most ordinary objects presented to
the eye under the microscope.
Certainly no more misleading name could well have been found to
describe the causation, in one particular direction, of small
displacements in the medium, through which the light waves are made to
pass.
The effect of “polarising” light is simply to alter the directions of
the vibrations of light, and allow of certain waves to pass which are
vibrating in one direction only, vertical, horizontal, or oblique,
as the case may be. The most efficient agent discovered for the
polarisation of light is that of Iceland spar, cut and mounted as a
“Nicol” prism.
By cutting crystals of Iceland spar into two parts, at a particular
angle, and cementing them together again in the reverse way, Nicol
succeeded in showing that one of the two polarising pencils could be
totally deflected to one side, while the other is directly transmitted
through the Nicol prism, and thereby the beam of light becomes at once
“polarised” in one plane only. No apparent difference can be seen in
the prism on holding it up to the light, except it be in a very slight
loss of brightness; but if another similarly heated crystal be held
before, and made to revolve around, a quarter of the circle just where
the two cross each other, total darkness results. This phenomenon
alternately recurs at every quadrature of the circle. A pair of Nicol
prisms, when appropriately mounted, constitute “a polarising apparatus”
for the microscope, one being fitted into the sub-stage, and the other
either immediately above the objective or eye-piece, where it can be
easily rotated, the object to be examined being placed on the stage of
the microscope, that is, between the polarising and analysing prisms.
[Illustration: POLARISCOPE OBJECTS.
Tuffen West, del. Edmund Evans.
PLATE VIII.]
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