In examining the nature and origin of colours as the component parts
of white light, the attention of Newton was directed to the curious
subject of the colours of thin plates, and to its application to
explain the colours of natural bodies. His earliest researches on this
subject were communicated, in his Discourse on Light and Colours,
to the Royal Society, on the 9th December, 1675, and were read at
subsequent meetings of that body. This discourse contained fuller
details respecting the composition and decomposition of light than
he had given in his letter to Oldenburg, and was concluded with nine
propositions, showing how the colours of thin transparent plates stand
related to those of all natural bodies.
The colours of thin plates seem to have been first observed by Mr.
Boyle. Dr. Hooke afterward studied them with some care, and gave a
correct account of the leading phenomena, as exhibited in the coloured
rings upon soap-bubbles, and between plates of glass pressed together.
He recognised that the colour depended upon some certain thickness of
the transparent plate, but he acknowledges that he had attempted in
vain to discover the relation between the thickness of the plate and
the colour which it produced.
Dr. Hooke succeeded in splitting a mineral substance, called mica,
into films of such extreme thinness as to give brilliant colours. One
plate, for example, gave a yellow colour, another a blue colour, and
the two together a deep purple; but, as plates which produced those
colours were always less than the 12,000th part of an inch thick,
it was quite impracticable, by any contrivance yet discovered, to
measure their thickness, and determine the law according to which the
colour varied with the thickness of the film. Newton surmounted this
difficulty by laying a double convex lens, the radius of curvature
of each side of which was fifty feet, upon the flat surface of a
plano-convex object-glass, and in this way he obtained a plate of air
or of space varying from the thinnest possible edge at the centre of
the object-glass where it touched the plane surface, to a considerable
thickness at the circumference of the lens. When light was allowed to
fall upon the object-glass, every different thickness of the plate
of air between the object-glass gave different colours, so that the
point where the two object-glasses touched one another was the centre
of a number of concentric coloured rings. Now, as the curvature of
the object-glass was known, it was easy to calculate the thickness of
the plate of air at which any particular colour appeared, and thus to
determine the law of the phenomena.
Public-domain text, read in full here on John Shaqi.
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