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
It has been said that no comparison can be instituted between
microscopic vision and macroscopic; that the images formed by minute
objects are not delineated microscopically under ordinary laws of
diffraction, and that the results are dioptrical. This assertion,
however, cannot be accepted unconditionally, as will be seen on more
careful examination of the late Professor Abbe’s masterly exposition
of “The Microscopical Theory of Vision,” and also his subsequent
investigations on the estimation of aperture and the value of
wide-angled immersion objectives, published in the “Journal of the
Royal Microscopical Society.”
The essential point in Abbe’s theory of microscopical vision is
that the images of minute objects in the microscope are not formed
exclusively on the ordinary _dioptric_ method (that is, in the same
way in which they are formed in the camera or telescope), but that
they are largely affected by the peculiar manner in which the minute
construction of the object breaks up the incident rays, giving rise to
_diffraction_.
The phenomena of diffraction in general may be observed experimentally
by plates of glass ruled with fine lines. Fig. 26 shows the appearance
presented by a single candle-flame seen through such a plate, an
uncoloured image of the flame occupying the centre, flanked on either
side by a row of coloured spectra of the flame, which become dimmer as
they recede from the centre. A similar phenomenon may be produced by
dust scattered over a glass plate, and by other objects whose structure
contains very minute particles, or the meshes of very fine gauze wire,
the rays suffering a characteristic change in passing through such
objects; that change consisting in the breaking up of a parallel beam
of light into a group of rays, diverging with wide angle and forming
a regular series of maxima and minima of intensity of light, due to
difference of phase of vibration.[10]
[Illustration: Fig. 26.]
In the same way, in the microscope, the diffraction pencil originating
from a beam incident upon, for instance, a diatom, appears as a fan of
isolated rays, decreasing in intensity as they are further removed from
the direction of the incident beam transmitted through the structure,
the interference of the primary waves giving a number of successive
maxima of light with dark interspaces.
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