The following experiments will show clearly the application of this
principle. We first take two similar prisms arranged as in Fig. 43. The
last through which the light passes corrects the deviation and
dispersion of the first. We then take two prisms, one of crown glass and
the other of flint glass, and since the dispersion of the flint is
greater than that of the crown, we imagine with justice that the
flint-glass prism may be of a less angle than the other and still have
the same dispersive power, and at the same time, seeing that the angles
of the prisms are different, we may expect to find that we shall get a
larger amount of deviation from the crown-glass prism than from the
other.
[Illustration:
FIG. 43.—Decomposition and Recomposition of Light by Two Prisms.
]
If then a ray of light be passed through the crown-glass prism, we get
the dispersion and deviation due to the prism A Fig. 44, giving a
spectrum at D. And now we take away the crown glass and place in its
stead a prism of flint glass inverted; the ray in this instance is
deviated less, but there is an equal amount of colouring at D´. If now
we use both prisms, acting in opposite directions, we shall be able to
get rid of the colours, but not entirely compensate the deviation. We
now place the original crown-glass prism in front of the lantern and
then interpose the flint-glass prism, so that the light shall pass
through both. The addition of this prism of flint, of greater dispersive
power, combines, or as it were shuts off, the colour, leaving the
deviation uncompensated, so that we get an uncoloured image of the hole
in front of the lantern at D˝. This is the foundation of the modern
achromatic telescope.
[Illustration:
FIG. 44.—Diagram Explaining the Formation of an Achromatic Lens. A,
crown-glass prism; B, flint-glass prism of less angle, but giving
the same amount of colour; C, the two prisms combined, giving a
colourless yet deviated band of light at D˝.
]
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