Light is polarized by transmission and by reflection. We have already,
when we were discussing the principle involved in the double-image
micrometer, seen how a crystal of Iceland spar divides a ray into two
parts at the point of incidence. Now these two rays are _oppositely
polarized_, that is to say, the vibrations take place in planes
perpendicular to each other; the vibrations of the incident light in one
plane are refracted more than the vibrations in the opposite plane, and
we have therefore two rays, one called the ordinary ray, and the other
the extraordinary ray. Fig. 204 shows a ray of light, S I, incident on
the first crystal at I; it is then divided up into the ordinary ray I R
and the extraordinary one I R´; a screen is then interposed, stopping
the extraordinary ray and allowing the ordinary one to fall on the
second crystal at I. If then this crystal be in a similar position to
the first, this ray, vibrating only in one plane, will pass onwards as
an ordinary ray, I R; there being no vibrations in the perpendicular
plane to form an extraordinary ray, there will be only one circle of
light thrown on the screen at O by the lens. But, if the second crystal
be turned round the line S S as an axis, the plane of vibration of the
ray falling on its surface will no longer coincide with the plane in
which an ordinary ray vibrates in the crystal, and it therefore becomes
split up into two, one vibrating in the plane as an ordinary ray, and
the other in that of an extraordinary ray; we have therefore the ray I
R´ in addition to the first, and consequently a second circle on the
screen at E´. As the crystal rotates, the plane of extraordinary
refraction becomes more and more coincident with the plane of vibration
of the incident ray, until, when it has revolved through 90°, it
coincides with it exactly; it then passes through totally as an
extraordinary ray, and as the refractive power of the crystal is greater
for vibrations in this plane, we get all the light traversing the
direction I R and falling on the screen at E´, and there being then no
light ordinarily refracted, the circle O disappears. Fig. 205 shows the
relative brightness of the circles E and O as they revolve round the
centre S of the screen, the images produced by the ordinary and the
extraordinary ray becoming alternately bright and dark as the crystal is
rotated. Fig. 206 shows the images on the screen when the ordinary ray
is stopped by the first screen instead of the extraordinary one.
[Illustration:
FIG. 205.—Appearance of the Spots of Light on the Screen shown in the
preceding Figure, allowing the ordinary ray to pass and rotating the
second Crystal.
]
[Illustration:
FIG. 206.—Appearance of Spots of Light on Screen on rotating the
second Crystal, when the extraordinary ray is allowed to pass
through the first Screen.
]
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